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 THE 
 
 CARPENTER'S NEW GUIDE; 
 
 A 
 
 COMPLETE BOOK OE LINES 
 
 FOR 
 
 CARPENTRY AND JOINERY: 
 
 TKEATING PULLY ON 
 
 ^mtiriil-(ienrattrq, 
 
 SOFFITS, GEOINS, NICHES, ROOFS, AND DOMES, 
 
 AND CONTAININa 
 
 \ 
 
 A GREAT YARIETY OF ORIGmAL DESIGNS. 
 
 ALSO A FULL EXEMPLIFICATION OP 
 
 THE THEORY AND PRACTICE OF STAIR BUILDING, 
 
 CORNICES, MOULDINGS, AND DRESSINGS OF EVERY DESCRIPTION. 
 
 INCLUDING ALSO 
 
 S0:ME OBSERYATIOI^S and calculation's 01^ THE STREI'GTH OE TIMBER, 
 
 BY PETEE NICHOLSON, 
 
 AUTHOR OP "the CARPENTER'S AND JOINER'S ASSISTANT," "THE STUDENT'S INSTRUCTOR TO THE FIVE ORDERS/' ETC. 
 
 THE "WHOLE BEING CAREFULLY AND THOROUGHLY REVISED 
 
 BY N. K. DAVIS. 
 
 AND CONTAINING NUMEROUS NEW, IMPROVED, AND 
 
 ORIGIis^AL DESIGIntS FOR ROOES, DOMES, ETC., 
 BY SAMUEL SLOAN, ARCHITECT, 
 
 AUTHOR OP "the MODEL ARCHITECT." 
 
 SIXTEENTH EDITION. 
 
 PHILADELPHIA: 
 LIPPINCOTT, GRAM BO & CO, 
 
 185 1. 
 

 \ 
 
 Entered, according to Act of Congress, in the year 1853, by 
 
 LIPPINCOTT, GRAMBO & CO., 
 
 in the Clerk's Office of the District Court of the United States for the Eastern District of Pennsylvania. 
 
 SIERKOTYPED BI J. FAOAN. 
 
 FEINTED BY T. K. AND P. 0. COLLIKB. 
 
THE AUTHOE'S PKEFACE. 
 
 To a book intended merely for the use of Practical Mechanics, much Preface is not neces- 
 sary. It is proper, however, to say, that whatever rules by previous authors have on 
 examination proved to be true and well explained, these have been selected and adopted, 
 with such alterations as a very close attention has warranted for the more easily compre- 
 hending them, for their greater accuracy or facility of application ; added to these, are many 
 examples which are entirely of my own invention, and such as will, I am persuaded, conduce 
 very much to the accuracy of the work, and to the ease of the workman. 
 
 The arrangement of the subjects in this work is gradual and regular, and such as a student 
 should pursue who wishes to attain a thorough knowledge of his profession : and as it is 
 Geometry that lays down all the first principles of building, measures of lines, angles, and 
 solids, and gives rules for describing the various kinds of figures used in buildings ; therefore, 
 as a necessary introduction to the art treated of, I have first laid down, and explained in the 
 terms of workmen, such problems of Geometkt as are absolutely requisite to the well under- 
 standing and putting in practice the necessary lines for Carpentry. These problems duly 
 considered, and their results well understood, the learner may proceed to the theoretical part 
 of the subject, in which Soffits claim particular attention ; for, by a thorough knowledge of 
 these, the student will be enabled to lay down arches which shall stand exactly perpen- 
 dicular over their plan, whatever form the plan may be : on this depends the well executing 
 all groins, arches, niches, &c., constructed in circular walls, or which stand upon irregular 
 bases ; wherefore the importance of rightly understanding these I cannot too much insist 
 upon, their construction being so various and intricate, and their uses so frequently required. 
 The two plates of cuneoidal or winding soffits are new, and are constructed in a more simple 
 and more accurate manner : yet this method is only a nearer approximation to truth than 
 the former one ; the surface of a conchoid cannot be developed ; that is, it cannot be ex- 
 tended on a plane : it is therefore absurd to look for perfection on this subject. 
 
 The next subject which regularly presents itself is Groins ; for the construction of which 
 there will be found many methods entirely new ; and besides the common figures, I have 
 shown many which are difficult of execution, and not to be found in any other author. I 
 have displayed a variety of methods for constructing spherical niches, a form more frequently 
 wanted than the elliptic, which only has yet been explained. 
 
 (iii) 
 
iv THE AUTHOR'S PREFACE. 
 
 Among tlie various methods for finding the Lines for Roofs, I have given an entire new 
 one for finding the down and side bevels of purlines, so that they shall exactly fit against 
 the hip rafter; and by the same method the jack rafter will be made to fit. 
 
 Of Domes and Polygons, I have shown an entirely new method for finding their covering, 
 within the space of the board, thereby avoiding the tedious and incommodious method of 
 finding the lines on the dome itself, as has been always practised heretofore : also a method 
 for finding the form of the boards near the bottom, when a dome is to be covered horizon- 
 tally. Of dome-lights over stair-cases, or in the centre of groins, a rule upon true principles 
 is given, for finding their proper curve against the wall, and the curve of the ribs ; this has 
 never before been made public. 
 
 Having gone thus far in the Art of Carpentry, it is necessary for me to say, by way of 
 caution and guard to the ardent theorist, that there are some surfaces which cannot be deve- 
 loped ; such as spherical or superoidical domes, where their coverings cannot be found by 
 any other means than by supposing the curved surface to become polygonal; in which case 
 such domes may be covered upon true principles, as may be demonstrated. Let us suppose 
 a polygonal dome inscribed in a spherical one ; then, the greater the number of sides of the 
 polygonal dome, the nearer it will coincide with its circumscribing spherical one. Again, 
 let us suppose that this polygonal dome has an infinite number of sides ; then, its surface 
 will exactly coincide with the spherical dome, and therefore in anything which we shall 
 have occasion to practise, this method will be sufficiently near; as, for example, in a dome 
 of one hundred sides, of a foot each, the rule for finding such a covering Avill give the practice 
 so very near, that the variation from absolute truth could not be perceived. 
 
 Having gone through the constructive part of Carpentry, I next proceed to examples 
 showing the best forms of floors, partitions, trusses for roofs, truss girders, domes, &c., which 
 shall resist their own weight, or the addition of any adventitious load. 
 
 To conclude : as I pretend not to infallibility, I hope to be judged with candor, being 
 always open to conviction, from a knowledge of the difficulty and intricacy of science ; yet 
 I hope that my labors may be of some use to others in shortening the road, and smoothing 
 the path through which, for many years, I have been a persevering traveller for knowledge : 
 I shall then be satisfied, and not deem my time misspent if my labors tend to the public 
 good. 
 
 P. NICHOLSON. 
 
PREFACE TO THE REVISED EDITION. 
 
 Few words are necessary to explain the present revision. When the work originally 
 appeared, it excited great interest among artizans, and at once took the foremost rank among 
 works of the kind. By its intrinsic merit, it has ever since maintained this position, 
 although, latterly, many professedly new and original works have heen issued, with the 
 avowed object of taking its place. They have failed to obtain foothold; and the limited 
 sale which some few have been so fortunate as to secure, must be attributed to the extensive 
 and valuable contributions levied on this work of Mr. Nicholson's. Indeed, it has been for 
 many years the great source of supply to pseudo authors, who, having mutilated what they 
 took to avoid recognition, represented their alterations as new and superior designs. Some 
 have, to a limited extent, succeeded ; but not among those who were acquainted with this, 
 the original and standard work. 
 
 ^o^ 
 
 Recentl}', however, such great advances have been made in the arts of Carpentry and 
 Joinery, that many things in the work are now almost obsolete. Notwithstanding this, the 
 sales of the work were undiminished, showing the esteem in which it was held; but the 
 publishers, unwilling that so valuable a treatise should be in any respect defective, determined 
 upon a revision. The present editors have undertaken it — with what success, the public 
 must judge. 
 
 All the plates have been re-engraved, and tlie matter they contained has been con- 
 densed, so that many valuable additions might be introduced, without increasing the bulk 
 of the work. A few plates, those on Practical Carpentry in particular, have been thrown 
 out, because they indicated methods entirely at variance with those in present use. A much 
 larger number has been substituted, comprising every principle of construction which the 
 carpenter will need. 
 
 (V) 
 
vi PREFACE TO THE REVISED EDITION. 
 
 Some years ago, a few plates on Stair-Casing were withdrawn, and improved methods 
 substituted by William Johnston, Architect, whose name appears on the title-page of the last 
 edition. All these methods of his have been retained entire, together with his remarks 
 upon them. Some plates, which were then rejected, have been replaced as too valuable 
 to be lost. To these have been added some original plates of Stair-Lines, in which the 
 principles are greatly simplified and may be applied to every kind of hand-railing. Many 
 other additions may be observed by inspecting the work. 
 
 The text also has been entirely re-written. A great part of it was so very obscure, as to 
 be almost unintelligible. This has been altered so as to be perspicuous ; and in some parts 
 the original explanations have been rejected entirely, and others introduced. It is not 
 claimed that the work is free from errors in this respect, but that it is free from all practical 
 error; and that the additions, substitutions, and alterations, will greatly improve its value, 
 and render it a complete compendium of Carpentry and Joinery. 
 
 THE EDITOKS. 
 
 Philadelphia, July^ 1853, 
 
CONTENTS. 
 
 PRACTICAL GEOMETRY. 
 
 PAGE 
 
 D efinitions 10 
 
 Problems • 12 
 
 DraAving Instruments 20 
 
 Mensuration 22 
 
 CARPENTRY. 
 
 Linings for Soffits 25 
 
 Tracery 28 
 
 Arches 29 
 
 Groins 30 
 
 Niches 39 
 
 Roofs : 43 
 
 Skylights 45 
 
 Domes 47 
 
 Practical Carpentry. — Designs 49 
 
 JOINERY. 
 
 Stau'-lines (Johnston) 68 
 
 Stair-lines (new) 76 
 
 Stair-lines (Nicholson) 78 
 
 Diminishing Columns 90 
 
 Sash-AYork 91 
 
 Architrave 92 
 
 Raking Mouldings, Cornices, &c 93 
 
 APPENDIX. — Strength of Timber 97 
 
 (vii) 
 
PRACTICAL GEOMETRY. 
 
 Extension lias three dimensionSj length, .breadth, and thickness. 
 
 Geometry is the science which has for its object, first, the measurement of extension ; 
 and secondly, to discover, by means of such measurements, the properties and relations of 
 geometrical figures. 
 
 Practical Geometry is that branch of the science which describes, without demonstra- 
 tion, the various methods of constructing angles, figures, curves, and geometrical solids, and 
 comprises also the rules for mensuration. 
 
 (ix) 
 
10 PRACTICAL GEOMETRY. 
 
 PLATE 1. 
 
 DEFINITIONS. 
 
 A POINT is that Tvliich has neither length, breadth, nor thickness, but position only. 
 
 A line is that ■which has length, without breadth or thickness. 
 
 A right or straight line preserves the same direction between any two of its points. See Fig. A. 
 
 A curve or curved line changes its direction at every point. See Fig. B. 
 
 A surface is that which has length and breadth, without height or thickness. 
 
 A plane is a surface, such, that if any two of its points be joined by a straight line, that line will lie 
 wholly in the surface. 
 
 Every surface which is not plane, or composed of plane surfaces, is a curved surface. 
 
 Two lines are said to be parallel, when, being situated in the same plane, they will not meet, how far 
 soever, either way, both of them be produced. See Fig. G. 
 
 When two straight lines meet each other, their inclination is called an angle, Avhich is greater or less 
 according as the inclination is greater or less. The two straight lines are called the sides of the angle, 
 and their common point of intersection the vertex. 
 
 When one straight line meets another straight line, without being inclined to it on the one side any 
 more than on the other, the angle formed is called a right angle, and the two lines are said to be perpen- 
 dicular to each other. See Fig. D. 
 
 An angle less than a right angle is an acute angle. See Fig. U. 
 
 An angle greater than a right angle is an obtuse angle. See Fig. JF. 
 
 An angle is designated by a single letter placed at the vertex, or by three letters, two of them upon 
 the sides, and the other at the vertex, the letter at the vertex being always placed in the middle, as the 
 angle c ov a c b, in Fig. ^. 
 
 A polygon is a portion of a plane terminated on all sides by lines. 
 
 A polygon of three sides is a triangle ; one of four sides, a quadrilateral ; one of five, a pentagon ; 
 one of six, a hexagon ; one of seven, a heptagon ; one of eight, an octagon ; one of nine, a nonagon ; 
 one of ten, a decagon. 
 
 An equilateral triangle has all its sides equal. See Fig. G. 
 
 An isosceles triangle has two of its sides equal. See Fig. JB". 
 
 A scalene triangle has all its sides unequal. See Fig. 7. 
 
 A right-angled triangle has one of its angles a right angle. See Fig. J. 
 
 A trapezium is a quadrilateral which has no two of its sides parallel. See Fig. IC. 
 
 A trapezoid is a quadrilateral which has two of its sides parallel. See Fig. L. 
 
 A parallelogram has its opposite sides parallel. See Fig. M. 
 
 A rhombus has its opposite sides equal and parallel — its angles not right angles. See Fig. iV. 
 
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PRACTICAL GEOMETRY. 11 
 
 A rectangle has its opposite sides parallel, and its angles right angles. See Fig. 0. 
 
 A square has all its sides equal, and its angles right angles. See Fig. P. 
 
 A regular polygon is one whose sides and angles are equal each to each. Thus, Fig. i2 is a regular 
 pentagon, *S' a regular hexagon, T a regular octagon. 
 
 An irregular polygon is one whose sides and angles are not equal. See Fig. Q. 
 
 A polygon is said to be inscribed in a circle when the vertices of its angles lie in the circumference. 
 Thus, ac d, Fig. X, is an inscribed triangle. The circle is also said to be circumscribed about the triangle. 
 
 A circle is a portion of a plane bounded on all sides by a curved line, every point of which is equally 
 distant from a point within, called the centre. See Fig. JJ. 
 
 The radius of a circle is a right line drawn from the centre to the circumference, as c c?, <? a, or 
 c h, Fig. U. 
 
 The diameter of a circle is a line passing through the centre, and terminated on both sides by the 
 circumference, as a b, Fig. U. 
 
 An arc is any part of the circumference, as a b, Fig. V. 
 
 A chord is a right line which joins the extremities of an arc, as a b, Fig. V. 
 
 A segment is the part of a cii'cle included between an arc and its chord. See Fig. T^. 
 
 A sector is the part of a circle included between an arc and two radii drawn to its extremities. See 
 Fig.' W. 
 
 A line is tangent to a circle when it has but one point in common with the circumference, and does 
 not intersect it. Thus, c ab, in Fig. J^, is a tangent. 
 
 The circumference of a circle is divided into 360 equal parts, called degrees. Arcs are estimated 
 according to the number of these equal parts which they contain. Thus, in Fig. Y, if the arc d e contains 
 80 of these parts, it is an arc of 30 degrees, written 30°. If a b contains 90 parts, it is an arc of 90°, 
 or a quadrant, that is, one-fourth of a circumference. 
 
 Arcs are also measures of angles, the vertices of the angles being supposed to be at the centre of the 
 circle. Thus, if the arc d e, in Fig. Y, contains 30°, the angle dee is an angle of 30°, and cZ c 6 is an 
 angle of 90°, or a right angle. 
 
 It will be observed that an angle of 45° is the half of a right angle. Thus, in Fig. Z, the angle fee, 
 or f e a, is an angle of 45°. Also, an angle of 60° is two-thirds of a right angle. Thus, the angle g eb is, 
 an angle of 60°. The chord of 60° is equal to the radius of the circle. Hence, the triangle g e b is 
 equilateral. 
 
12 PRACTICAL GEOMETRY. 
 
 PLATE 2. 
 
 PROBLEMS. 
 
 Fig. 1. To draw a Perpendicular at a given Point in a Line. 
 
 Having taken two points, a and h, equally distant from c, the given point, as centres, describe arcs inter- 
 secting each other at d, and then draw d c; it will be the perpendicular required. 
 
 Fig. 2. From a given Point without a Line to let fall a Perpendicular upon the Line. 
 From the given point d, as a centre, describe an arc cutting the given line in two points, a and b ; with 
 these points as centres, describe two arcs intersecting each other at e ; then draw d e, and it will be the 
 perpendicular required. 
 
 Fig. 3. To bisect a given Line by a Perpendicular. 
 From a and b, the extremities of the line, as centres, describe two arcs, intersecting each other at d 
 and e ; draw d e, and it will bisect the given line at c, and be perpendicular to it. 
 
 Second method. From a and b, as centres, describe two arcs, intersecting each other at g, and from g 
 let fall a perpendicular upon ab. 
 
 Fig. 4. To draw a Perpendicular to a Line at its Extremity. 
 
 Let b be the extremity of the given line ; from any point e above the line as a centre, describe the arc 
 ab d; draw ac d and db; it will be the perpendicular required. 
 
 Second method. Upon the given line take a b, equal to six units of measure, as inches, feet, or rods, 
 then, with a radius of eight units and centre b, draw a dotted arc above a b, as at d, and with a radius of ten 
 units and the centre a, draw an intersecting arc at d ; from d, the point of intersection, draw d b, and it 
 will be the perpendicular required. 
 
 Fig. 5. To draw a Perpendicular to a Line at or near its Extremity. 
 From the points a and g, as centres, describe two arcs intersecting each other at d and e ; draw d c, and 
 it will be perpendicular to the given line at (?. 
 
 Fig. 6. Through a given Point to draw a Line parallel to a given Line. 
 Let c be the given point and a b the given line ; from a and e as centres describe the arcs a d and c b ; 
 make a d equal to b e, and draw c d; \i will be parallel to ab. 
 
 Fig. 7. To bisect a given Angle. 
 From c, the vertex of the angle, as a centre, describe an arc a b ; from a and b, as centres, describe two 
 arcs intersecting each other at e ; draw c e, and it will bisect the angle. 
 
 Fig. 8. To make an Angle at a given Point on a Line equal to a given Angle. 
 Let 2/ e be the line, y the given point, and/e^ the given angle ; from c as a centre with any radius, as 
 c a^ describe the arc a b ; from the given point ?/ as a centre, and with the same radius, describe the arc x z 
 and make it equal to ab; then draw y 2, and xy z will be the required angle. 
 
 Fig. 8. To divide a Line into Parts proportional to the Parts of a given Line. 
 
 Let ?/ e be the given line, divided into parts at the points a, b, c,d; let y nhe the line to be divided ; 
 join the extremities e n, and draw the lines dk, e i, &c., parallel to e n. 
 
 Second method. Let fg be the given line, divided at the points i and k, and d e the one to be divided. 
 From e, the vertex of the triangle cfg, draw the lines e i and c k. 
 
 Fig. 9. Two Angles of a Triangle being given, to find the Third. 
 On the straight line a b lay off 6 c e equal to one of the given angles, and dee equal to the other ; and 
 ac d will be the third angle required. 
 
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PRACTICAL GEOMETRY. 13 
 
 PLATE e. 
 
 PE B L E M S — (continu£d). 
 
 Fig. 1. To construct an equilateral Trianyle on a given Line. 
 From c and h, the extremities of the given line, as centres, and with the radius c h, describe two arcs intersecting 
 at rt, and draw a h, a c. 
 
 Fig. 2. The three Sides of a Triangle being given, to construct the Triangle. 
 Make the side a h equal to G, one of the given lines. From the extremities a and h, with radii equal to A and B, 
 the other given lines, describe two arcs intersecting at c, and draw a c and h c. 
 
 Fig. 3. To construct a Rectangle, equivalent to a given Parallelogram. 
 Let ahdc be the given parallelogram. Construct upon its base, c c7, a rectangle having the same altitude as the 
 parallelogram. 
 
 Fig. 4. To construct a. Rhombus loith a given Angle. 
 Make the angle bad equal to the given angle. Make a b and a d equal, and draw b c pai-allel to a d, and d c 
 parallel to a 6. 
 
 Fig. 5. To construct a Square on a given Line. 
 From c and d, the extremities of the line, as centres, describe the arcs ceb, and d ea. From e set off e a, and c h 
 equal to e f, the half of e c ; then draw d b, a b, and a c. 
 
 Second Method. At c and d, the extremities of the given line, erect perpendiculars. From c and d, as centres, 
 with the radius c d, describe arcs intersecting the perpendiculars at b and c, and then draw b c. 
 
 Fig, 6. To construct a Rectangle equivalent to a given Triangle. 
 At b and c, the extremities of the base of the given triangle, erect the perpendiculars b d and c e. Intersect these 
 perpendiculars by the line d e, parallel to the base b c, and drawn through y, the middle point of the altitude of the triangle. 
 
 Fig. 7. To construct a Square equivalent to a given Rectangle. 
 Produce d c, one side of the rectangle, until c i, the part produced, is equal to c b, the other side of the rectangle. 
 Bisect d i at n ; from n, as a centre, with the radius n d, describe a semicircumference. Produce cb to e, and on c e 
 describe a square. 
 
 Fig. 8. To inscribe in a Circle a regular Sexagon and an equilateral Triangle. 
 Apply the radius c a six times to the circumference, and then will be inscribed a regular hexagon. Join the alter- 
 nate angles of the hexagon, and there will be inscribed an equilateral triangle. 
 
 Fig. 9. To inscribe in a Circle a regular Pentagon. 
 Draw two diameters, a h and b i, perpendicular to each other. Bisect the radius be at e; take e d, equal to a e; 
 then from a, as a centre, and with the radius a d, describe the arc d f, and the chord a/ will be one side of the required 
 pentagon. 
 
 Fig. 10. To inscribe in a Circle a Square and a regular Octagon. 
 To inscribe a square, draw two diameters at right angles to each other, and join their extremities. Bisect the are 
 subtended by one of the sides of the square, and the chord a b, of half the arc, will be the side of the octagon required. 
 
 Fig. 11. To mahe an Octagon out of a Square. 
 Draw the diagonals f e and d g; from f and e, as centres, and with a radius equal to one-half of the diagonal, 
 describe arcs cutting the sides of the square in a and b ; remove from each corner of the square a triangle equal to ab g. 
 
 Fig. 12. To maJce a Square equal to two given Squares. 
 Let b d and b g he the two given squares. Having placed them so that the angle at b shall be vertical, as repre- 
 sented in the figure, join u and c, and construct a square on a c. 
 
 Note. — The proposition upon which the solution of the above problem depends, viz., that in every right-angled triangle 
 the square upon the hypothenuse is equal to the sum of the squares upon the other two sides, is of great practical value. A 
 new method of demonstrating the proposition is shown in Fig. 1.3. Lot ab che a right-angled triangle. Produce b a until 
 a y is equal to 6 c; construct squares on 6 </, 6 a, and c a ; draw /i; 7i parallel to/' e, and ey A: A will be a square on 6 c ; then 
 tlie whole figure, minus the four triangles, A, IJ, C, and £>, is the square upon the hypothenuse. The same fio-ure, minus 
 the four equal triangles, C, D, E, and F, is the sum of the squares upon the other two sides ; hence, the proposition is true. 
 
 The solution of the problem in Plate 2, Fig. 4, depends, also, upon this proposition. The distances a b, and h d, are the 
 base and perpendicular of a right-angled triangle, of which the distance a d is the hypothenuse. It will be observed, the 
 sum of the squares of 6 and 8, equal to 30 and C4, is equal to the square of 10, which is 100. 
 
 Various other valuable practical results may bo olitaincd from the demonstration. As, for instance, the square on the 
 hypothenuse is equal to twice the rectangle contained by the sides, plus the square, upon the difference of the sides; all of 
 which may be readily seen by a reference to the figure. 
 
 The above demonstration of this celebrated proposition has never before been published. — Ed. 
 
14 PRACTICAL GEOMETRY. 
 
 PLATE 4. 
 
 PROBLEMS (Continued). 
 
 Fig. 1. To find the Centre of a Circle. 
 Draw any chord, as ef. At z, the middle point of e f, erect the perpendicular a i, and produce it 
 to b. Then c, the middle point of a b, is the centre of the circle. 
 
 Fig. 2. To find the Centre of an Arc. 
 Draw two chords, a b and a d ; bisect them hy perpendiculars ; and c, their point of intersection, is 
 the centre of the arc. 
 
 Fig. 8. To find the Length of an Arc. 
 
 Let a 5 e be any arc ; bisect it at 5, and draw the chord a b ; produce the chord a c, until it is equal 
 to twice a b ; again, produce c n, until n i is equal to one-fourth of en; and a i is the length of the arc. 
 
 Fig. 4. To find the Length or Stretch-out of a Semicircumference. 
 Construct an equilateral triangle, m n L on the diameter m n ; draw the tangent-line bad parallel to 
 m n, until it meets i m and i n produced. Then b a dls, the stretch-out of the semicircumference man. 
 
 Fig. 5. To draw a Tangent to a Circle at a given Point. 
 
 Let a be the given point ; draw bad perpendicular to the radius c a, at its extremity, and it will be 
 the tangent required. 
 
 Fig. 6. A Tangent-line being given, to find the Point where it touches the Circumference, 
 
 Take d, any point of the tangent-line, and draw d c io the centre of the circle ; on c c? , as a diameter, 
 describe a semicircumference, and the point a, where it intersects the circumference of the circle, is the 
 point of tangency. 
 
 Fig. 7. To describe a Segment of a Circle having a given Base and Height. 
 
 Let b d \iQ the base, and af the height ; bisect b d \)j the perpendicular a/ e, and draw b a ; bisect b a 
 by the perpendicular e c, and c, the intersection of the two perpendiculars, is the centre of the circle, from 
 which, with the radius e a, the segment bad may be described. 
 
 Fig. 8. To draw a Segm,ent by Hods to any Length and Height. 
 
 Make two rods, a b and a cZ, each being equal to the base 5 c? of the segment, to form the angle had; 
 then, haying them secured, and placed as in the figure, put a nail at b and one at d. Now, place a pencil- 
 point at a, and move the frame either way, sliding against the nails at h and d, and the point a will mark 
 the arc of the required segment. 
 
 Second 3Iethod. — If the segment required is too large to be conveniently drawn in this way, we may 
 cut a triangular piece of board, as shown at Fig. 9, the height i c of the triangle being half the height of the 
 segment. Now, by putting a nail also at a, we may, with this triangle, draw half the arc of the required 
 segment at a time, in a manner similar to the above, placing it, as shown by the rods, at e a and e b. The 
 angle a e 5 of the rods is equal to b i d. 
 
 Fig. 10. To draw the Segment of a Circle by the Method of intersecting Lines. 
 
 Let b d\)Q the base of the segment, and a 6 its height ; draw the chord a h, and erect b m perpendicular 
 to it, and e b perpendicular to b d; divide b 6 and 6 £?, each into six equal parts, at the points 1, 2, &c. ; 
 divide, also, a m into six equal parts, at the points 1', 2', &c., and draw the lines 1 1', 2 2', &c. ; and their 
 points of intersection with the lines a 1, a 2, &c., are points of the curve ; trace the curve through them, and 
 you will have the half-segment a b. The other half may be drawn in the same way. 
 
Plate . 4 
 
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Plate 
 
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 Fig. 4. 
 
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 Fig. 7. 
 
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 Fig.O. 
 
 Fuj.n. 
 
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 Fiij.lZ . 
 
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PRACTICAL GEOMETRY. 15 
 
 PLATE 5. 
 
 OF SOLIDS. 
 DEFINITIONS. 
 
 A cube is a solid bounded by six equal squares. See Fig. ,1. 
 
 A prism is a solid whose lateral faces are parallelograms, and whose upper and lower 
 bases are equal polygons. See Figs. 2 and 3, Hate 4. 
 
 A prism is triangular, quadrangular, or pentagonal, according as its base is a triangle, 
 quadrilateral, or pentagon. 
 
 The altitude of a prism is the perpendicular distance between its upper and lower bases. 
 Thus, a h, in Fig. 3, represents the altitude of the prism. 
 
 A prism is right when its altitude is equal to its side, or when the side is perpendicular 
 to the plane of the base ; otherwise it is oblique. 
 
 A pyramid is a solid formed by several plane angles proceeding from a common point, 
 called its vertex, and terminating in a regular polygon, which forms its base. See Figs. 5 and 6. 
 
 A truncated pyramid, or the frustum of a pyramid, is that part of a pyramid which is 
 left after the upper part has been cut off by a plane parallel to its base. See Fig. 5. 
 
 The altitude of a pyramid is the perpendicular distance from its vertex to its base. 
 Thus, i c, in Fig. 6, is the altitude of the pyramid. 
 
 A cylinder is a solid generated by the revolution of a rectangle about one of its sides. 
 See Fig. 7. The side of the rectangle about which it is supposed to revolve, is the axis or 
 altitude of the cylinder. See a h, in Fig. 8. 
 
 A sphere is a solid generated by the revolution of a semicircle around its diameter. 
 See Fig. 9. The diameter of a sphere, is a line passing through the centre and terminating 
 on both sides in the surface. See ad, Fig. 10. The radius of a sphere is half of the dia- 
 meter, or a line drawn from the centre to any point of the surface. See h c, Fig. 10. 
 
 A cone is a solid generated by the revolution of a right-angled triangle around one of its 
 sides. Thus, in Fig. 12, if the right-angled triangle be revolved around the side a h, it will 
 generate a cone, as represented in Fig. 11. In Fig. 12, a 6 is the altitude of the cone, and 
 h d the radius of the base. 
 
 If a cone be cut by a plane, making, with the plane of the base, an angle less than the 
 angle included between the side of the cone and its base, the section will be an ellipse. Thus, 
 the section formed by a plane passing through the line a h, in Fig. 11, is an ellipse. It is 
 also represented in Fig. 13. 
 
 If a cone be cut by a plane, making, with the plane of the base, an angle equal to the 
 angle included between the side and the base, the section will be a parabola. Thus, the section 
 formed by a plane passing through the line a c, Fig. 11, is a parabola. It is represented in 
 Fig. 14. 
 
 If a cone be cut by a plane, making, with the plane of the base, an angle greater than 
 the angle included between the side and the base, the section will be an hyperbola. Thus, 
 the section formed by a plane passing through the line a d, in Fig. 11, is an hyperbola. It 
 IS represented in Fig. 15. 
 
16 PRACTICAL GEOMETEY. 
 
 PLATE 6. 
 
 T H E E L L I P S E. 
 
 DEFINITIONS. 
 
 An ellipse is a curve, such tliat if from any point two lines be drawn to two fixed points, their sum will 
 be always equal to a given line. Thus, let a, Fig. 1, be any point of the curve, and o and o' the two fixed 
 points ; then, if o a + o' a is always equal to a given line, the curve is an ellipse. 
 
 The two fixed points, o and o', are called foci. 
 
 A diameter is any line passing through the centre, and terminating in the curve. 
 
 The diameter which passes through the foci is called the transverse axis ; and the one perpendicular to 
 it is the conjugate axis. Thus, D B, Fig. 1, is the tranverse axis, and A B the conjugate axis. 
 
 PROBLEMS. 
 Fig. 1. To describe an Ellipse with a String, the Foci and transverse Axes being given. 
 Take a string equal to the transverse axis, and fasten its extremities at the foci ; then place a pencil 
 against the string, and move it around, keeping the string constantly stretched. 
 
 Fig. 1. To do the same with the Trammel, the Centre and Axes being given. 
 Place the trammel at the centre, as seen in the figure, and so arrange the rod efg upon the arms, and 
 the pencil g upon the rod, that e g will be equal to the transverse, and/ (/ equal to the conjugate axis. Move 
 the pencil around, and it will describe an elUpse. 
 
 Fig. 2. To describe an Ellipse by means of intersecting Lines, the Axes being given. 
 Describe a rectangle upon the axes, and divide the conjugate axis into a number of equal parts, at the 
 points 1, 2, 3, &c. ; divide the transverse axis into the same number of equal parts, at the points 1', 2', 3', 
 &c. ; then draw the lines A 1, A 2, &c., B 1', b 2', &c., and their intersections will be points of the curve 
 Trace the curve through these points. 
 
 Fig. 3. To describe a ranipant Ellipse. 
 This problem is performed in the same way as the preceding, except that the parallelogram a 5 B d is 
 used instead of the rectangle ab dc,m Fig. 2. 
 
 Fig. 4. The transverse and conjugate Axis of an Ellijjse being given, to draw its representation. 
 Draw b e parallel and equal to A c ; bisect it at/, and draw a/ and b B, intersecting each other at h ; 
 bisect A 7c by a perpendicular, meeting A B produced in e, and draw b c, meeting e c in e ; then from e, as a 
 centre, describe the arc B Ic, and from c, as a centre, describe the arc A Ic, and you will have one- fourth of 
 the curve. Draw the other parts in the same way. 
 
 Fig. 5. An Ellipse being given, to describe within it another, having the same Eccentricity, or the same 
 
 Proportions in respect to Length and Width. 
 
 Describe the rectangle ab d e ori the transverse and conjugate axis, and draw the diagonals a d and b c ; 
 let a' b' be the conjugate axis of the required ellipse, and through a' b' draw a' b' and c' d' parallel to B b ; 
 join a' c' and b' d' , and d' e' will be the tranverse axis of the required ellipse. 
 
 Fig. 6. An Ellipse being given, to find the Centre, Axes, and Foci. 
 
 Draw any two lines, a c and d e, parallel to each other, and draw i k through their middle points ; 
 bisect i k at c, and c will be the centre of the ellipse. 
 
 From c, as a centre, describe two arcs, intersecting the curve at m and n ; draw m n, and D c E, per- 
 pendicular to it, will be the transverse axis, and A C B, perpendicular to it, will be the conjugate axis. 
 
 From B, as a centre, with a radius equal to c E, describe two arcs, intersecting the transverse axis, and 
 the points of intersection, o and o',.wiU be the foci. 
 
 Fig. 6. To draw a Tangent to an Ellipse, at a given Point. 
 
 Let b be the given point ; draw b o and b o' to the foci, and produce o b to o ; bisect the angle o b 0% 
 and the bisecting line will be the required tangent. 
 
Plate 6. 
 
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PRACTICAL GEOMETRY. 17 
 
 PLATE 7. 
 
 THE PARABOLA, HYPERBOLA, AND CYCLOID. 
 
 DEFINITIONS. 
 
 A parabola is a curve, any point of whicli is equally distant from a fixed point and a given line. Let A B, Fig. 1 
 b^ the given line, and F the fixed point; then, for any point of the curve, as G, the distances G r and G C are equal. 
 
 The given line, A B, is called the directrix. 
 
 The fixed point, f, is called the focus. 
 
 The line, H D, drawn through the focus and perpendicular to A B, is called the axis. 
 
 The line, m n, drawn through the focus, perpendicular to the axis, is called the parameter. 
 
 An hyperbola is a curve, in which the difference of two lines, drawn from any of its points to two fixed points, is 
 constantly equal to a given line. Let B, Fig. 4, be any point of the curve, and A and F the two fixed points ; then the 
 difference between A B and B F is always equal to a given line. 
 
 The points A and F are called the foci, and M the centre, of the hyperbola. 
 
 The two curves described around the foci A and F, are called branches of the hyperbola. 
 
 In common language, the term hyperbola is applied to a single branch of the curve. 
 
 A diameter is any line passing through the centre and terminating on both sides of the curve. Thus, i L is a diameter. 
 
 The diameter K H, which, being produced, passes through the foci, is called the transverse axis. 
 
 The line NO, perpendicular to it, is the conjugate axis. 
 
 If a circle, E F D, Fig. 6, be rolled along a right line, A B, any point of the circumference, as D, will describe an 
 arc, as D b, which is called a cycloid. 
 
 The circle, E F D, is called the generating circle, and the point D, the generating point. 
 
 The right line, a b, equal to the circumference of the generating circle, is called the base of the cycloid. 
 
 The line, D E, is called the axis of the cycloid. 
 
 PKOBLEMS. 
 Fig. 1. To describe a Parabola, 
 Take a straight edge, A B, and T-square, GO; fasten at G one end of a string, equal to gc, and the other end at f; 
 place a pencil against the string, keeping it always stretched, and move the square along the straight edge. The pencil 
 will describe a parabola. 
 
 Fig. 2. To describe a Parabola by intersecting Lines. 
 Take the rectangle A H c cr, and divide the sides a c and c H into the same number of equal parts at the points 
 I, 2, 3, 1', 2', 3', &c. ; draw perpendiculars to c H, at the points 1', 2', 3', &c., and, also, the lines A 1, A 2, &c., inter- 
 secting them ; trace the curve through the points of intersection. 
 
 Fig. 3. To do the same by another Method. 
 Take the triangle c c d, and divide the sides C c and C d into the same number of equal parts at the points 1, 2, 3, 
 &c. ; draw the lines 1 1, 2 2, 3 3, &c., and trace the curve so that these lines shall be tangent to it, as represented in 
 the figure. 
 
 Fig. 4. To describe an Hyperbola. 
 
 Fasten one end of a rod at A, and attach a string to the other end, at c ; fasten the other end of the string at f : 
 place a pencil against it, and move it round the point F, keeping the string always stretched. 
 
 Fig. 5. To do the same by intersecting Lines. 
 Divide the sides a c and c B of the rectangle A B c a into the same number of equal parts at the points 1, 2, 3, 
 1', 2', o', &c. ; produce B A to c, and trace the curve through the intersection of the lines c 1, A 1, c 2, A 2, &c. 
 
 Fig. 6. To describe a Cycloid. 
 Upon a E, half the base of the cycloid, and E c, the radius of the generating circle, construct the rectangle a E Cc; 
 divide ae, and the semicircumference E F D, into the same number of equal parts at the points 1, 2, 3, 1', 2', 3', &c., and 
 erect the perpendiculars 1' 1', 2' 2', &c. ; from 6', as a centre, with a radius equal to c E, describe the arc 6' a; from 5', 
 as a centre, with the same radius, describe the arc 5' i, and so on ; from the points 6', 5', &c., lay off", on these arcs, the 
 chords E 1, E 2, &c., and through their extremities, a, i, li, &c., trace the curve. 
 
 3 
 
18 PRACTICAL GEOMETRY. 
 
 PLATE 8. 
 
 THE SECTIONS OF A SEMI-CYLINDER AND HEMISPHERE. 
 
 The section of a cylinder, made by a plane oblique to the axis, is an ellipse. 
 Every section of a globe is a circle. 
 
 Every section of a globe, made by a plane passing through its centre, is called a great circle, being the largest that 
 can be obtained by cutting the globe. Its radius is equal to the radius of the globe. 
 
 PROBLEMS. 
 
 Fig. 1. To find the Section of a Setni-cylinderyinade hy a Plane at right angles to the Plane passing through its Axis. 
 
 The section is a semi-ellipse, whose conjugate axis is the diameter of the cylinder, and whose transverse axis is the 
 intersection of the two perpendicular planes ; thus, taking ef o', equal to e o, the radius of the cylinder, as the semi- 
 conjugate axis, and a b, the intersection of the planes, as the transverse axis, the semi-ellipse may be described with the 
 trammel, as represented in the figure. 
 
 Second Method. Divide the semicircumference doc into any number of parts, and draw, from the points of divi- 
 sion, perpendiculars to d c, meeting a 6 at the points 1' 2' 3', &c. ; erect the perpendiculars 1' 1', 2' 2', &c., respectively 
 equal to the lines 1 1, 2 2, 3 3, &c., and trace the curve through 1' 1', 2' 2', 3' 3', &c. 
 
 For, conceive the semicircle and the semi-ellipse to be turned around d c and a h, so as to be perpendicular to the 
 plane abed, then will they occupy the same position as in the solid, and the lines V 1', 2' 2', &c., will be respectively 
 parallel to 11, 2 2, &c. ; hence, the semi-ellipse thus found is the true section of the cylinder. 
 
 Fig. 2. To fi/nd the Section of a Semi-cylinder, made by a Plane, forminy an acute Angle with the Plane passing 
 
 through its Axis. 
 
 In the right-angled triangle i' a/ i, at A, make the angle i' ( a;' equal to the angle of the planes, and i' a/ equal to 
 the radius of the base of the cylinder ; from s draw s x, parallel to c c? ; draw t x, equal to <' a/ at A, and perpendicular 
 to a b; produce it until i i is equal to t! i' at A, and draw i s; draw x g perpendicular to the tangent fg, which is 
 parallel to c d; join e and g; draw the tangent Vh parallel to eg, and from Fdraw Vy perpendicular to c d, until it 
 meets b a produced ; draw y m parallel to s i, and then draw s m perpendicular to s i and y m ; then the section will be 
 an ellipse of which s m is the semi-transverse axis, and s4' equal to ef, the semi-conjugate axis. The ellipse may be 
 described with the trammel. 
 
 Second Method. Draw 1 1, 2 2, 3 3, &c., parallel to e g, and from the points 1, 2, 3, &c., in c d, erect the perpen- 
 diculars 1 1', 2 2', 3 3', &c.; then, draw 1' V, 2' 2', 3' 3', &c., parallel to s i, making them respectively equal to 1 1, 2 2, 
 3 3, &c. ; trace the curve through the points 1', 2', 3', &c. 
 
 Fig. 3. To find the Section of a Segment of a Cylinder, made by a Plane forming an obtuse Angle with the Plane 
 
 of the Segment. 
 
 Make the angle V a' x, at B, equal to the angle of the planes, and draw a' d perpendicular to a! x, and make it 
 equal to g h, the height of the segment; draw V d perpendicular to a' d; draw ab parallel to m n, and b c perpendicular 
 to ef, and equal to b' c' at i?; produce c b until c4' is equal to c' a' at B; join 4' and a. This line corresponds to is, 
 Fig. 2, and the curve may be traced by the second method of the preceding problem. 
 
FLate 8 
 
 F,U,.3. 
 
PRACTICAL GEOMETRY. 19 
 
 At Fig. 4 is esLibited the method of finding an oblique section of a solid of irregular form ; which is the same as 
 that employed in the second method of the problem preceding the last. 
 
 Fig. 5. Given, the Position of three Points hi the Circumference of a Cylinder, and their respective Heights from the 
 Base, to find the Section of the Segment of the Cylinder, through these three Points. 
 
 Let c e f? be three points in the circumference of the base of the cylinder, immediately under the three given points, 
 and Z yXthe height of the given points respectively, above the base ; join the points c and d , and draw ca, e A, and 
 d h, perpendicular to c d, equal to Z, Y, and X, respectively ; produce c d and a & to meet each other in ; draw e D 
 ■parallel to d 0, and AD parallel to b; join D 0. In D 0, take any point, as P, and draw P M perpendicular to 
 P c, cutting d in H; from the point P, draw .ff/ perpendicular to h, cutting it at K; from 0, with the radius P, 
 describe the arc IP, cutting HI in I, and join 1; divide the circumference ced into any number of equal parts, and 
 from the points of division draw lines to cd parallel to P, cutting cdin\, 2, 3, &c. ; from the points 1, 2, 3, &c., in 
 c d, draw lines parallel to dh, cutting the line a 6 in 1', 2', 3', &c. ; from the points 1', 2', 3', &c., in a h, draw lines 
 parallel to 1, and make 1' 1' equal to 1 1 on the base of the cylinder ; make 2' 2' equal to 2 2, 3' 3', equal to 3 3, &c. 
 Through the points 1' 2' 3', &c., trace the curve, which will be the contour of the section required. 
 
 Fig. 6. To find the Section of a Hemisphere made hy a Plane perpendicular to its Base. 
 
 Let/ cZ be the radius of the sphere, and a h the diameter of the section ; describe a semicircumference upon a b, as 
 a diameter, and it will be the section required. 
 
 Fig. 7. To find the Section of a Semi-ellipsoid, which is a Solid generated, by the Revolution of a Semi-ellipse 
 
 about its Axis, made by a Plane perpendicular to its Base. 
 
 Let cdhQ the diameter of the circular base, and the curve c o cZ be a section perpendicular to the base, and passing 
 through the centre ; then, let a b, parallel to c d, be the diameter of the required section. The curve a o' h may be 
 traced by means of the lines in the %ure, according to principles heretofore developed. 
 
 At Fig. 8, is exhibited the method of finding any section of an irregular solid, generated by revolution. Let s/be 
 the axis of revolution, c / the base of the generating figure, and a b the base of the section. The method will be readily 
 understood by inspection of the figure. 
 
20 PKACTICAL GEOMBTKY. 
 
 PLATE 9. 
 
 DRAWING INSTRUMENTS. 
 
 The Geometrical Drawing of an object is usually made on a much smaller scale than the 
 real size of the object. Thus, the drawing of a house, for instance, is much smaller than the 
 house. In order that the drawing may be a correct representation of the object, the relative 
 size of the various parts of the drawing must be the same as the corresponding parts of the 
 object itself. In other words, the parts of the drawing must all be made on the same scale. 
 There are a variety of instruments used in drawing, some of the most important of which are 
 represented in the plate. 
 
 Fig. 1. This figure represents a drawing-board, a T-square, and a triangle. Drawing- 
 boards are sometimes made with a frame surrounding the board, by which, to confine the 
 paper; but experience proves that the kind here exhibited are cheapest and best. Any 
 ordinary workman can make one. Take a board about two feet wide and three feet long, and 
 screw cleats beneath, to keep it from warping. Dress the top perfectly smooth and level, and 
 see that the ends are perfectly parallel and at right angles to the sides. To prepare it for 
 use, cut your paper somewhat smaller than the board. Sponge it all over, and having pasted 
 or glued the edges of the paper to the upper surface of the board, put it aside. In drying, 
 the paper will stretch tight, and present a smooth firm surface to draw upon, which being 
 done, the drawing may be cut out, and the board cleaned off with hot water. 
 
 The T-square is used to draw parallel lines. By moving the shoulder of the cross-piece 
 along the end of the board, any number of parallels may be produced. 
 
 In using the triangle, the T-square is held firmly on the board, and by placing the 
 triangle, with either of its edges, against the rule of the square, oblique or perpendicular 
 lines may be drawn to it, and by moving the triangle along the rule, lines parallel to 
 these may be produced. 
 
 Fig. 2 is a flat instrument, usually made of ivory, upon one side of which is a variety 
 of scales ; those following the numbers 20, 25, &c., are scales of equal parts, differing only in 
 respect to the length of the unit of the scale. The first unit, which is usually not numbered, 
 is divided on the upper side into twelve, and on the lower side into ten, equal parts. In 
 drawing an object, having determined which of the scales shall be used, and how many units 
 of measure of any given denomination on the object, as inches or feet, shall be represented 
 by a unit of the scale, take from the scale, with the divisions, the number of units correspond- 
 ing to the length of any line on the object, and lay them down upon the drawing. The 
 fractional parts of the unit of the scale may be taken nearly by means of the divisions of the 
 first unit in the scale. When greater accuracy is required in the fractional parts, the diagonal 
 scale of equal parts, which is represented on the lower side of the figure, is used. The first 
 unit in this scale is divided, both on the upper and lower side, into ten equal parts, and 
 
Plate 9 
 
 Fif) . -1 . 
 
PRACTICAL GEOMETRY. 21 
 
 oblique lines drawn from the first point of division on the one side to the second on the other, 
 from the second on the one to the third on the other, &c. It is, also, divided into ten equal 
 parts by horizontal lines. By this means, the length of a line can be taken off accurately to one 
 one-hundreth of the unit of the scale. If the fractional part of the unit consists of any number 
 of tenths and hundredths, open the dividers till one foot reaches the oblique line, denoted by 
 the tenths, counting from the right, on the horizontal line, denoted by the hundredths, count- 
 ing from the bottom. 
 
 The scale marked C H is a scale of chords. It is formed, as the figure indicates, by 
 laying down, upon a right line, the chords of one, two, three degrees, &c., to ninety degrees. 
 This scale is useful in laying down an angle containing any given number of degrees, and in 
 measuring the number of degrees in a given angle. To lay down an angle containing any 
 number of degrees, draw one side of the angle ; from one extremity of the side, as a centre, 
 with a radius equal to the chord of sixty degrees, describe an arc ; lay off, from the side on 
 this arc, the chord of the given number of degrees, and, through the extremity of the chord, 
 draw from the centre the other side of the angle. To measure the number of degrees in a 
 given angle, from the vertex of the angle as a centre, with a radius equal to the chord of 
 sixty degrees, describe an arc intersecting the sides, and the chord of the intercepted arc will 
 indicate the number of degrees in the angle. 
 
 The other side of this instrument is represented in Fig. 4. By means of the graduation 
 of its perimeter, it is made to answer the same purpose as the semicircular Protractor, which 
 will soon be explained. 
 
 Fig. 3 is a Sectoral scale of equal parts. It consists of two arms, which turn upon a 
 joint, and upon each of which is a scale of equal parts. Its use is the same as that of the 
 above scales of equal parts. Having determined upon a scale for drawing, as, for instance, 
 five feet to the inch, open the dividers to the distance of an inch, and then open the arms of 
 the instrument, until the dividers will extend from 5 on one arm to 5 on the other. Then, 
 to take off any number of feet with the dividers, as, for instance, nine, the angles of the arms 
 remaining unchanged, open the dividers until its feet extend from 9 on the one side to 9 on 
 the other. Other scales are usually laid down on this instrument, but they are of no import- 
 ance to the student of practical carpentry. 
 
 Fig. 4 is a Semicircular Protractor. It is used, like the scale of chords, in laying down 
 and measuring angles. To lay down an angle of any number of degrees, place the centre of 
 a circle at the vertex of the angle ; make the diameter coincide with one side of the angle, 
 and then count off on the circumference the required number of degrees, and draw from the 
 vextex the other side of the angle. To measure an angle, place the centre at the vertex of 
 the angle, and count on the circumference the number of degrees included between the sides 
 of the angle. 
 
MEN SUR ATIOE* 
 
 OF SURFACES. 
 
 We determine the area or contents of a surface, by finding how many times the given surface contains some other sur- 
 face which is assumed as the unit of measure. Thus, when we say that a square yard contains 9 square feet, we should 
 understand that one square foot is taken as the unit of measure, and that this unit is contained 9 times in the square yard. 
 
 The most convenient unit of measure for a surface is a square whose side is a linear unit in which the linear dimen- 
 sions of the figure are estimated. Thus, if the linear dimensions are feet, it will be most convenient to express the area 
 in square feetj if the linear dimensions are yards, it will be most convenient to express the area in square yards, &c. 
 
 I. To find the Area of a Square, a Rectangle, or a Parallelogram. 
 3Iultiply the Ijase hy the altitude, and the product will he the area. 
 Ex. 1. What is the area of a square whose side is 204-3 feet? Ans. 41738-49 sq. ft. 
 
 Ex. 2. To find the area of a rectangular board, whose length is 12 J feet, and breadth 9 inches. Ans. 9f sq. ft. 
 Ex. 3. To find the number of square yards of plastering in a parallelogram, whose base is 37 feet, and altitude 
 5 feet 3 inches. Ans. 21^^ sq. yds. 
 
 [. , To find the Area of a Triangle. 
 Multipli/ the hase hi/ the altitude, and taJce half the product. Or, multipli/ one of these dimensions hy half the other. 
 Ex. 1. To find the number of square yards in a triangle, whose base is 40 feet, and whose altitude is 30 feet, 
 Ans. 66f sq. ft. 
 
 m. To find the Area of a Trapezoid. 
 
 Add together the two parallel sides; then multiply their sum hy the altitude of the trapezoid, and half the product 
 will he the required area. 
 
 Ex. 1. How many square feet are contained in a plank, whose length is 12 feet 6 inches, the breadth at the greater 
 end 15 inches, ^nd at the less end 11 inches ? Ans. 13^| sq. ft. 
 
 IV. To find the Area of a Quadrilateral. 
 
 Join two of the angles hy a diagonal, dividing the quadrilateral imto two triangles; then, from each of the other 
 angles, let fall a perpendicular on the diagonal; then multiply the diagonal hy half the sum of the two perpendiculars., 
 and the product will he the area. 
 
 Ex. 1. How many square yards of flooring in the quadrilateral, whose diagonal is 65 feet, and the two perpendiculars 
 letfalluponit, 28 and33Heet? JLns. 222^^ sq. yds. 
 
 V. To find the Area of a regular Polygon. 
 
 Multiply half the perimeter of the polygon hy the apothegm or perpendicular, let fall from the centre on one of its 
 sides, and the product will he the area required. 
 
 Ex. 1. To find the area of a regular hexagon whose sides are 20 feet each, and whose apothegm is 17-3205 feet, 
 Ans. 1039.23 sq. ft. 
 
 * Davies' Legendre. 
 
 (22) 
 
MENSURATION. 23 
 
 VI. To find the Circumference of a Circle when tlie Diameter is given, or the Diameter when the Circumference is given. 
 
 MaltipJi/ the diameter hy 3-1416, and tlieprod^ict will he the circumference ; or, divide the circumference by 3-1416, 
 and tlie quotient will he the diameter. 
 
 Ex. 1. What is the circumference of a circle whose diameter is 25? Ans. 78-54. 
 
 Ex. 2. "What is the diameter of a circle whose circumference is 6850? Ans. 2180-41. 
 
 VII. To find the Length of an Arc of a Circle containing any Number of Degrees. 
 Multiply the number of degrees in the given arc by 0-0087266, and this product by the diameter of the circle. 
 Remark. — When the arc contains degrees and minutes, reduce the minutes to the decimal of a degree, which is 
 done by dividing them by 60. 
 
 Ex. 1. To find the length of an arc of thirty degrees (30°), the diameter being 18 feet. Ans. 4-712364 ft. 
 
 VIII. To find the Area of a Circle. 
 Multiply the circumference by half the radius. Or, multiply the square of the radius by 3-1416. 
 Ex. 1. How many square yards in a circle whose diameter is 3| feet ? Ans. 1-069016. 
 
 IX. To find the Area of a Sector of a Circle. 
 Midtiply the arc of the sector by half the radius. 
 Ex. 1. To find the area of a sector whose arc is 20 feet, the radius being 10 feet. Ans. 100 sq. ft. 
 
 X. To find the Area of a Segment of a Circle. 
 
 Find the area of a sector having the same arc ; find the area of the triangle formed by the chord, of the segment 
 and two radii of the circle ; then add these two areas together when the segment is greater than a semicircle, and subtract 
 the triangle from the sector when it is less. 
 
 Ex. 1. Required the area of the segment- whose cord is 16, the diameter being 20. Ans. 44-764. 
 
 OF SOLIDS. 
 
 The Mensuration of Solids is divided into two parts : fi^rst, the mensuration of their surfaces; and, secondly, the 
 mensuration of their solidities. 
 
 We have already seen, that the unit of measure for plane surfaces is a square whose side is the unit of length. A 
 curved line, which is expressed by numbers, is also referred to a unit of length, and its numerical value is the number 
 of times which the line contains its unit. If, then, we suppose the linear unit to be reduced to a right line, and a square 
 constructed on this line, this square will be the unit of measure for curved surfaces. 
 
 The unit of solidity is a cube, the face of which is equal to the superficial unit in which the surface of the solid is 
 estimated, and the edge is equal to the linear unit in which the linear dimensions of the solid are expressed. 
 The following is a table of solid measures : — 
 
 1728 cubic inches = 1 cubic foot. 
 27 cubic feet = 1 cubic yard. 
 4492J cubic feet = 1 cubic rod. 
 
 I. To find the Surface of a right Prism. 
 
 Multiply the perimeter of the base by the altitude, and the product will he the convex surface ; to this add the 
 area of the two bases, when the whole surface is required. 
 
 Ex. 1. What must be paid for lining a rectangular cistern with lead, at 2d. a pound, the " thickness of the lead 
 being such as to weigh 7 lbs. to each square foot of surface; the inner dimensions of the cistern being as follows, viz. : 
 the length 3 feet 2 inches, the breadth 2 feet 8 inches, and the depth 2 feet 6 inches? Ans. 21. 3s. IQ^d. 
 
24 MENSURATION. 
 
 II. To find the Surface of a right Pyramid. 
 
 Multiply the perimeter of the base by half the slant height, and the product will be the convex surface ; to this add 
 the area of the base. 
 
 Ex. 1. What is the entire surface of a right pyramid whose slant height is 15 feet, and the base a pentagon whose 
 sides are each 25 feet? Atis. 2012-798 sq. ft. 
 
 III. To find the Solidity of a JPrism. 
 
 Find the area of the base; multiply this area by the altitude, and the product will be the solidity of the prism. 
 
 Ex. 1. What are the solid contents of a cube whose side is 24 inches ? Ans. 13824 cu. in. 
 
 Ex. 2. How many cubic feet in a block of marble of which the length is 3 feet 2 inches, breadth 2 feet 8 inches, 
 and height or thickness 2 feet 6 inches ? ^ws. 21i cu. ft. 
 
 Ex. 3. Kequired the solidity of a triangular prism whose height is 10 feet, and the sides of its triangular base 3, 4, 
 and 5 feet. Ans. 60 cu. ft. 
 
 IV. To find the Solidity of a Pyramid. 
 Midtiply the area of the base by one-third of the altitude, and the product will be the solidify. 
 Ex; 1. What is the solidity of a pyramid, each side of its square base being 30 feet, and the altitude 25 feet ? 
 Ans. 7500 cu. ft. 
 
 V. To find the Surf ace of a Cylinder. 
 3Iul(iply the circumference of the base by the altitude, and the product will be the convex surface; to this add tJie 
 areas of the two bases. 
 
 Ex. 1. Required the entire surface of a cylinder, the diameter of whose base is 2, and whose altitude is 20. 
 Ans. 131-9472. 
 
 VI. To find the Surf ace of a Cone. 
 Multiply the circumference of the base by half the slant height ; to this add the area of the base. 
 Ex. 1. Required the entire surface of a cone whose slant height is 36 feet, and the diameter of its base 18 feet. 
 Ans. 1272-348 sq. ft. 
 
 VII. To find the Solidity of a Cylinder. 
 Multiply the area of the base by the altftude. 
 
 Ex. 1. Required the solidity of a cylinder whose altitude is 12 feet, and the diameter of its base 15 feet. 
 Ans. 2120-58 cu. ft. 
 
 VIII. To find the Solidity of a Cone. 
 Multiply the area of the base by the altitude, and take one-third of the product. ' 
 
 Ex. 1. Required the solidity of a cone whose altitude is 27 feet, and the diameter of the base 10 feet. 
 Ans. 706-86 cu. ft. 
 
 IX. To find the convex Surface of a spherical Zone. 
 
 Multiply the altitude of the zone by the circumference of a great circle of the sphere, and the product will be the 
 convex surface. 
 
 Ex. 1. The diameter of a sphere being 42 inches, what is the convex surface of a zone whose altitude is 9 inches ? 
 Ans. 1187-5248 sq. in. 
 
 X. To find the Solidify of a Sphere. 
 
 Multiply the surface, found by the preceding ride, by one-third the radius. Or, cube the diameter, and multiply 
 the number thus found by 0-52SQ. 
 
 Ex. 1. What is the solidity of a sphere whose diameter is 12 ? Ans. 904-7808. 
 
 XI. To find the Solidify of a spherical Segment. 
 Find the areas of the two bases, and mulfiply their sum by half the height of the segment ; to this product add the 
 
 solidity of a sphere whose diameter is equal to the height of the segment. 
 
 Remark. — When the segment has but one base, the other is to be considered equal to 0.' 
 
 Ex. 1. What is the solidity of a spherical segment, the diameter of the sphere being 40, and the distances from the 
 
 centre to the bases being 16 and 10 ? -4?is. 4297-7088. 
 
Plate 10 
 
 p.g'ulyiHr,ff ^^^ 
 
OF CARPENTRY. 
 
 LININGS FOR SOFFITS. 
 
 DEFINITIONS. 
 
 The Lining of a Soffit, in Carpentry, signifies the covering of any concave surface. The 
 lining is drawn as if spread out on a plane, so that when bent to the curve it will exactly 
 fit the Soffit. 
 
 A Soffit, in Architecture, is the under side of the head of a door, window, or the intrados of 
 an arch. It may be either plane or curved. 
 
 PLATE 10. 
 
 Fig. 1. To draw the Lining for the Soffit of a Window or Door, having parallel Jamhs and a 
 semicircular Head, which cuts obliquely through a straight Wall. 
 
 Let C be the plan or opening of the window, and let the base of the semicircle B be 
 drawn at right angles to the jambs or sides of the plan C. Divide the semicircumference 
 into any number of equal parts, as ten, and from these points draw perpendiculars to its base 
 across the plan ; extend the parts around B on the stretch-out line, and from these points 
 erect perpendiculars ; now make 1' a' = 1 a, 2' h' =z2 h, and so on. Trace a curve through 
 the points a' U d d', &c., and it will be one edge of the lining ; the other is obtained in a 
 similar manner. 
 
 If it is desired to make the cylinder, whose length shall be only the thickness of the 
 wall, the form of the end of it is seen at D, which is of course a semi-ellipse, traced by 
 ordinates from the semicircle B. 
 
 Fig. 2 shows the method of getting the lining for the soffit of a semicircular window or 
 door-head, cutting right into a circular wall. The principle of this, and the following, is 
 similar to the preceding, and requires no further explanation. 
 
 Fig. 3 shows the lining for a soffit of an opening, which cuts obliquely into a circular wall. 
 4 (25) 
 
26 LININGS FOR SOFFITS. 
 
 PLATE 11. 
 
 Fig. 1. To draw the Lining for the Soffit of an Opening, with a circular Head, sjplaying equally 
 
 all around, in a straight Wall. 
 
 Let A be the plan of the opening ; continue the sides or jambs a c and d h until they 
 meet in e ; then, with the centre e, describe the edges of the lining O; make the curve a h' 
 equal in length to the semicircumference at B, and the lining G, of the soffit, will be 
 determined. 
 
 For, conceive the semicircle B to be turned at right angles to the plan A, then every 
 point in the semicircumference at B will be equidistant from the point e. But G is described 
 with the same radius = a e ; therefore, the edge a V of the lining G, may be brought to 
 coincide with the arch of the semicircle B. 
 
 Fig. 2. To draw the Lining for the Soffit of an Opening, wiili a circular Head splaying equally 
 
 all around, in a circular Wall. 
 
 Divide the semicircumference at B into any number of equal parts, as ten, and draw 
 perpendiculars from these points to the base o o ; thence draw lines to meet in /; from the 
 points 1' 2' 3' 4', &c., in the stretch-out line, which correspond to 1 2 3 4, &c., at B, draw lines 
 also converging to/; now, from the points of intersection ah cde, on the plan of the opening 
 A, draw lines to of, parallel to the base oo, and with the centre/, and radius/*, draw the 
 arc ie'; also, with/7i, draw the arc hd', and so on; then, by tracing a curve through the 
 points a' h' c', &c., we have half the outer edge of the lining, from which the other half is 
 easily obtained. The lower edge is found on the same principle, and thus the lining G of the 
 soffit is determined. 
 
 For it is easy to conceive that, if the semicircle B be turned at right angles to the plan 
 A, the points 1' 2' 3', &c., may be brougjit to coincide with the points 12 3, &c., on the arch 
 B; then, the points a' h' c', &c., will stand perpendicularly over the points ah c, &o., on the 
 plan ; because the arcs e a', f h', g c', &c., will lie directly over the lines ea,fh, g c, &c. 
 
 Note. The learner is advised to cut this, and the following soffits, out of pasteboard, which will familiarise the 
 principles 
 
Plate 11 
 

 1 
 
 , a 
 
 h 
 
 
 ,1 
 
 
 
 C 
 
 
 ~-^^^^ 
 
 ] 
 
 I 
 
 i 
 
 ;* 
 
 -? 
 
 ^ 
 
 
 / 
 
 ■ 
 
LININGS FOE SOFFITS. 27 
 
 PLATE 12. 
 
 Fig. 1. To draw the Lining of a cylindrical Soffit cutting right in a Wall which does not stand perpendicular 
 to the Grround, so that the Edge of the Lining will stand directly over the base Line of the Aperture. 
 
 Let a <7, at A, be tlie level of the ground, and a m the line of the wall, equal to the radius of the cylin- 
 der ; with this radius describe the semicircle at B ; take the distance a 6 to the foot of the perpendicular m b, 
 at A, and place it from a to 4, at B. Now, upon the lines o a and a 4, as axes, draw, by means of the inter- 
 secting lines exhibited, the semi-ellipse 0, 1, 2, 3, 4, &c. ; divide the semicircumference into any number of 
 equal parts, as four, and l«t fall the perpendiculars to the base line o c ; also, at C, make the line o o equal 
 to the stretch-out of the semicircumference, at B, and lay down the corresponding division. Now, at A, draw 
 m g perpendicular to m a, and take from B the distances dl, e2, b 3, a 4,- and set them, at A, from g, thus, 
 gffe, ed, do; erect perpendiculars from each of the points/, e, d, c, towards the line ^ to; on the lining, 
 
 0, make the distances Id, 2 c, 3 5, 4 a, equal to the distances g h, h i, i Ic, Jc I, at A, respectively ; then, 
 trace a curve, at C, through the points o, d, c, b, a, and these points of the lining, when it is bent around the 
 curve on the plan B, will stand directly over o, d, c, b, a, at B, and the points 1, 2^ 3, 4, of the lining C, will 
 coincide with the points 1, 2, 3, 4, at B. 
 
 Fig. 2. To find the Lining for the Soffit of an Aperture in a straight Wail, whose Plan is a Trapezoid, 
 and whose Elevation on the inside is a Semi-ellipse, and on the outside a Semicircle, so related to each 
 other, that a Straight-edge coinciding with the lined Surface may everywhere be horizontal. 
 
 Let the trapezoid A B c D be the plan of the aperture, A B being the inner side, and c D being the outer 
 side, while A c and B D represent the jambs ; with the centre G and radius G D describe the semicircle D e' c, which 
 will be the outside elevation ; also, taking E P = G b', describe the semi-ellipse A e B, which will be the inside 
 elevation ; continue the jambs A c and B D until they meet in H, and through H and G draw the line H E. 
 Now, divide the quarter circumference c e' into any number of equal parts, as five, and from these points 
 
 1, 2, 3, 4, let fall perpendiculars to c G. From H, through the points e,f, g, h, the foot of each perpendicular, 
 draw lines intersecting the line A B. 
 
 Draw the line H K perpendicular to A H, and equal to c G, and divide it like to c G, making 'B.l = ah, 
 I m, h g, (fee. Now, with the radius H e and the centre I, describe an arc towards e' ; also, with the radius 
 H/and the centre m, describe an arc towards/', and so on. Having taken the fifth part of the arc c e', 
 such as c 1, fix one foot of the dividers in c, and with the other intersect the first arc at e' ; then, place the 
 foot in e', and intersect the next arc at f, and so on, to g'. Trace a line through the points c, e', f, g', 
 h',^G', and this will be half the outer edge of the lining, which will lie over the line c, e,f, g, h, G, of the plan, 
 and will coincide with the arc c, 1, 2, 3, 4, e', which is turned around c G, so as to stand at right angles to 
 the plan. The other half of the outer edge of the lining g' d' is similar, and found by inversion, making 
 the angle I K L = i K H, and the divisions on K L equal to those on K ii. 
 
 Extend the lines I e', mf, n g' , and o h', towards a' , V , c', d', and take e' a' = e a on the plan ; also, 
 /' b' ^fb, and so on. Then, through the points A, a', b', c', cV, f', trace the line A f', and, having obtained 
 in like manner its prolongation f' b', the line A e' will be the outer edge of the lining. Now, the figure A b' 
 d' c will be the entire development of the lining, Avhich, when bent over the plan, will exactly fit the soffit. 
 
28 LININGS FOR SOFFITS. —TRACERY. 
 
 PLATE IB. 
 
 Fig. 1. To find the Lining for the Soffit of an Aperture in a circular Wall, the Jambs being 
 inclined to each other, and the covered Surface splaying, so that a Straight-edge, coinciding 
 with it, may everywhere be horizontal. 
 
 The method for obtaining these lines is similar to that exhibited on the last plate. The 
 nature of the aperture is the same, and the principle explained there, as applying to a straight 
 wall, is here applied to a circular wall. The curve of the wall is drawn upon the plate with 
 a very short radius, in order to exhibit the method more plainly. Find the line s g' o', as in 
 the last plate ; take the distances from the line s G o to the arcs representing the faces of the 
 wall, and transfer these distances to the lining, and the edges will be found as in the last. 
 
 TRACERY. 
 
 Fig. 2, Having given any Gothic Arch, to draw anxyther, either right or rampant, so that the two 
 
 shall intersect or mitre truly together. 
 
 Let A be the given arch. Draw the chord a o, and divide it into any number of equal 
 parts, as four; then, from the point e, draw lines through 1, 2, 3, intersecting the arch at/i gf. 
 Erect a d perpendicular to a e, and from o, through fg h, draw lines intersecting the perpen- 
 dicular in d, c, b. Now, let the arch B, which we wish to draw in correspondence with A, 
 have the same height, eo, and a greater base, ae; draw the line ao, and divide it also into 
 four equal parts ; make the divisions on ad equal to those on a cZ at A, and draw lines from o 
 to the points b, c, d. Having drawn lines from e, through 1, 2, 3, trace the curve ofg h a, 
 through the points of intersection. This willgive the desired arch. 
 
 By similar construction, the rampant arch G may be made to correspond with either 
 Aq>x B. 
 
Plate 13 
 
ARCHES. 29 
 
 PLATE 14. 
 
 To draw Arches of various Forms, and to find the Lines of the Joints between the Ar6h-stones. 
 
 As carpenters are frequently called upon to prepare centring for arches, and also to cut 
 out patterns of the arch-stones, to be used by the stone-cutter, we have thought best to in tro- 
 duce a plate which will familiarise the student with the best methods of drawing and dividing 
 arches. 
 
 Fig. 1. This is the semicircular, or perfect arch. It is drawn from the centre c, and 
 the joints between the voussoirs are parts of the radii. If it is not convenient to draw the 
 radii, make each line perpendicular to a tangent, as at t. 
 
 Fig. 2. This is a diminished, surbased, segmental, or imperfect arch ; being composed 
 of an arc less than a semicircle. An easier method of drawing the joint is here exhibited. 
 From the points 1 and 3, as centres, draw small intersecting arcs above the arch ; and from 
 the point of intersection, draw a line through the point 2, bisecting 1, 3 ; this will give the 
 line of the joint correctly. 
 
 Fig. 3. This is an Arabesque, Saracenic, or horse-shoe arch, sometimes also called, the 
 Oriental arch. It consists of an arc greater than a semicircle. The joints between the 
 springers lower than the centre, must not be drawn from the centre, as c c, but must be 
 made parallel to the imposts, or base line d e, as a 5. 
 
 Fig. 4. The elliptical arch. Various methods for drawing the ellipse are laid down in 
 tlie first part of the v/ork, and it is unnecessary to repeat them. To draw the joints, let r f' 
 be the foci of the ellipse ; then, a line bisecting the angle f 1 r' will give the first joint, and 
 so on. If the curve is to be composed of a series of arcs of a circle, the points o, a, h, c, may 
 be used as centres. 
 
 Fig. 5. The Gothic lancet arch consists of two arcs, the radii of which are longer than 
 the span A B. The joints are drawn from the points oo'. 
 
 Fig. 6. The equilateral arch is described by radii equal to the span. 
 
 Fig. 7. The obtuse pointed arch is described by radii shorter than the span. 
 
 Fig. 8. The ogee, contrasted, or reflected arch, is described from four centres, two 
 within, and two without the arch, a, &, o, o'. The proportions may be varied at pleasure. 
 
 Fig. 9. The Tudor arch is described from four centres within the arch, o, o', o, o'. For 
 an arch whose height is half its span, they may be found thus : divide the base line A b into 
 three equal parts at o and o' ; then will o' be the centre of the arc b n ; from d, through 
 o, draw a line, and make the distance from c to o' equal to c d ; then is o' the centre with 
 which to describe the arc i> n. Those arches which have their height greater or less than 
 half the span, are found by other rules ; but the proportions here given are perhaps the best. 
 The joints between the voussoirs, in this case also, lie in the direction of the radii. 
 
30 GROINS. 
 
 PLATE 15. 
 
 GROINS. 
 
 DEFINITION. 
 
 Groins are formed by the intersection of arches or vaults, and the surfaces where they meet may be 
 considered as the sections of cylinders, &c. 
 
 DESCRIPTION OF THE CENTRING FOR BRICK-GROINS. 
 
 Fig. 1. P, P, P, P, is the plan of the piers which the vault is to stand upon ; a h, Fig. 2, is the end 
 opening, which is a given semicircle ; and b cis the opening of the side-arch, which is to come to the same height 
 as the end-arch a 6 : fix your centres over the body-vault. Fig. 1, as shown in the section at (7, then board 
 them over. In Fig. 1 is the manner of fixing the jack-ribs upon the boards, which is likewise shown at O. 
 
 To find the Mould for the Jach-rihs. 
 
 Take the opening of your arches in Fig. 1, that is, a h and a d, and lay them down in Fig. 2, at ah and 
 h c, to make a right-angle. Divide one half of the given semicircle, JJ, into five parts, and draw perpen- 
 diculars across, at 1, 1, 1, &c., to cut b d and d c, the diagonals in 2, 2, 2, &c. Now, through the points 
 2, 2,- 2, &c., draw lines parallel to 1, 1, 1, &c., at the base of J/, both ways towards P and G ; stick in nails at 
 1, 2, 3, 4, 5, in the arc of P, and bend a thin slip of wood round them, which mark with a pencil at every 
 nail; this slip of wood being stretched out from d, V, 2', 3', 4', 5', and perpendiculars drawn towards Gr, 
 will intersect the other lines, making small rectangles : a curve being traced through the intersections, will 
 give a mould to set the jack-ribs. 
 
 To place the Jack-ribs. 
 
 Bend your mould, Cr, from a to the crown at e, in Fig. 1, which will give the edges of your boards ; 
 then fix a temporary piece of wood, level upon the crown, in the direction of //, and let it come the thick- 
 ness of the boards lower than the crown, and it will give the height of the jack-ribs, which is a very sure 
 method of placing them. 
 
 To find a Mould to cut the Ends of the Boards. 
 
 The semi-ellipse P is traced to the height of P, or drawn by a trammel. Take the parts round P, and 
 lay them out to V, 2', 3', 4', 5' ; then H will be found in the same manner as Cr, which will be a mould to 
 cut the ends of the board that goes upon the jack-ribs against the body-vault. 
 
 To find the Moulds when both Arches have the same Opening. 
 
 Fig. 3. Take half the opening of the arches, whatever they are, and draw a quarter-circle, and divide 
 it into six parts ; bend a slip round it to take its parts, then stretch it out upon the base from to 6', and 
 draw perpendiculars from the points V, 2', 3', &c. Through the points in the arc, draw the lines on both 
 sides, parallel to 0, 6' ; the curve being traced as before, gives both moulds of an equal and similar form. 
 
Plate 15 
 
Plate 16 
 
GROINS. 31 
 
 PLATE 16. 
 
 The Plan and Inclination of an ascending Oroin, one of the Body-ribs, and the Place of the 
 Intersection on the Plan, being given, to find tJie Form of the Side-ribs, so that the Intersection 
 of the Arches shall lie in a pei'pendicular Plane. 
 
 Divide half the circumference of the body-rib, at B, into any number of equal parts ; 
 draw lines from these points perpendicular to its base, and continue them to the line of 
 intersection on the plan ; from thence, let them be drawn at right-angles towards C, and 
 make the distances lb,lc,l d, 1 e, &c., at G, equal to the corresponding distances at B; then 
 will the curve abed, &c., be the true curve of the side-rib. This curve is a semi-ellipse, and 
 may be found by intersecting lines, as at F, according to the rule for describing a rampant 
 ellipse. 
 
 To find the Moulds for placing the Jach-ribs. 
 
 At c, draw lines from the points a, b, c, d, &c., perpendicular to the line of ascent h g, 
 towards D and E) draw the semi-ellipse A as wide as the body-range, and as high as ah at 
 c ; continue the ordinates 1 5, 1 c, 1 d, &c., up to J. ; bend a slip around A, and mark upon 
 it the points 0, 1, 2, 3, &c. ; extend the slip upon the line h 6, at D and E, and divide it 
 correspondingly ; now, through each of these points, draw perpendiculars across ^ 6 to inter- 
 sect the lines drawn perpendicular to the rake ; then, curves traced through the points of 
 intersection will give the moulds for placing the jack-ribs. The edges of these moulds, bent 
 over the body-vault when boarded in, will exactly coincide with the intersection of the side 
 and body vaults. 
 
 To find the Jaclc-ribs of the Side-groins. 
 
 Draw the number of the jack-ribs upon the arch B, at their proper distances, and take 
 their several heights, 7i i, h I, m n, &c., and set them upon the arch O from a to b, from b to 
 c, from c tod; draw lines through b c d, parallel to the rake, and they will show on the curve 
 the proper length and form of the jack-ribs. 
 
 To bevel the Body-ribs. 
 
 Since all the body-ribs stand perpendicular to the plan, the upper edge must be bevelled 
 to correspond to the rake of the groin. To do this, let the under edge 1 1 1 1, at ^, of the 
 body-ribs, be bevelled according to the rake, so that they may stand perpendicular ; then, 
 take a mould from B, or one of the body-ribs will answer, and place it on each side of the 
 rib to be cut, making the lower bevelled edges correspond. The upper edges may now be 
 marked and bevelled. 
 
32 oaoiNS. 
 
 PLATE 17. 
 
 Tlie two Arclies and IncUfiation of an ascending Oroin heing^ given, to find the Place of the 
 
 Inte7'section on the Plan. 
 
 Divide half of the body-rib 5 into equal parts, and thence draw lines, parallel to its base, 
 to the line af. With a, as a centre, draw the concentric arcs from the points 5, c, d, e,/, around 
 to h, g, i, k, I, and thence draw lines, parallel to the rake, to cut the arch G at 1, 2, 3, 4, and 
 a, h, c, d. From these points, draw lines through the plan, perpendicular to the direction of 
 the body-vault. From the centre g, erect a perpendicular to the rake, cutting the arch at 6. 
 From 5, draw another line through the plan. Also, from 1, 2, 3, 4, 5, at B, draw lines through 
 the plan, parallel to the direction of the body- vault, and trace curves from the piers to h, 
 through the points of intersection. These curves will be the place on the plan of the inter- 
 section of the vaults. 
 
 The moulds D and E, and the jack-ribs, are found in the same way as those on the last 
 plate. 
 
 Kemarks. — Groins similar to these last may be seen under the Adelphi Buildings in the 
 Strand, London, where the declivity in going to the river is very steep. 
 
 In practice, there is no occasion for tracing these intersections on the plan, since the 
 moulds D and E are sufficient, without reference to the plan. To use these moulds, for this 
 and all other kinds of brick-groins, the centres or body-ribs must be placed first, as if there 
 were no side-arches cutting across them, and then closely boarded over. The moulds D and E 
 must both be bent over the body-vault together. Place the points I and e upon the piers at 
 o and e. Then, keeping the top-points at 5' together, bend the moulds over the body-vault, 
 and the point 5' will stand perpendicularly over h on the plan. Now, along the inner edges 
 of the moulds, draw a curve on the boards of the body-vault, and this will be the line of 
 intersection. The jack-ribs of the side-vault are set to this line at the proper distances from 
 each other. 
 
 It must further be observed, that the arch B must not be used instead of the arch A, 
 since this would produce a very great error in the moulds D and E; for it is evident that a 
 section of the body-vault, perpendicular to its axis, must be less in height than the vertical 
 section B, since this is oblique to the cylinder. Hence, the moulds being drawn by means 
 of perpendiculars to the rake, the arch A must necessarily be used in finding them. If all 
 these things are properly understood, no difficulty can occur in brick-groins which may not 
 easily be surmounted. 
 
Plate 17 
 
GROINS. 33 
 
 PLATE 18. 
 
 Fig. 1. Tlte Diagonals of a plaster Groin, wJiicJi are straiglit tipon the Plan, and one of the 
 
 Side-ai'clies heing given, to find the Jach-rihs. 
 
 Lay down the plan of the ribs, as at B, and draw a rib upon each opening ; draw per- 
 pendicular lines from the plan of each opening, at the extremities ace, to cut its corresponding 
 ribs at h df; then, the distance from b to h shows the length of the first jack-rib, from d to d 
 the length of the second, and from /to/, the third, 
 
 JSow to bevel the Angle-ribs, so that they shall range with the Opening of the Groin. 
 
 First, get out the ribs in two halves, or thicknesses, as at ^and F; then, draw the plan 
 of the angle-rib, which, placed between E and F, will show the true ranging upon the bottom 
 of the rib ; now shift your hib-mould parallel to the base of F and F, and it will show how 
 much wood there is to be bevelled off; then nail the two halves together, and the rib will be 
 complete. 
 
 To find the Jack-ribs, when tlie given Arch is tlie Segment of a Circle. 
 
 The ribs in this case maybe found by the method explained on Plate 13, Fig. 2j as 
 shown upon this plate at B, E, and i^. Fig. 2 ; also, we may take the height of the segment 
 A, Fig. 2, and place it from b to c, at G and D ; now take twice the radius a c, at A, and 
 place it from c and c, the crowns of G and D, to a and d ; the arches G and D, which are 
 parts of ellipses, may then be drawn by intersecting lines, as explained on Plate 6, Fig. 2. 
 Either of these methods is much easier, in practice, than to trace the ribs through ordinates. 
 
24 GROINS. 
 
 PLATE 19. 
 
 Given one of the Bodij-rihs, the Angles straight upon the Plan, and the Ascent of a Groin not 
 standing upon level Ground, to find the Form of the ascending Arches, and the Aiigle-rihs, 
 
 Let 5 a c at -B be the angle of the ascent ; from the point h make h c perpendicular to a h, 
 and describe the rampant curve B; then draw the diagonal ah a,t E, and make he perpen- 
 dicular to it, and equal to h c at B; then draw the hypothenuse a c, and describe the angle- 
 rib E, in the same manner as that of B. 
 
 To find the Length of (he JacTc-rihs, so that they shall fit to the JRalte of the Groin. 
 
 Draw lines up from the plan to the arch, as at D, in the same manner as explained here- 
 tofore ; then the arch from a to a is the first jack-rib, from 5 to h the second, and from c to c 
 the third, &c. 
 
 To range the Angle-ribs for these Groins. 
 
 Get the ribs out in two halves, as in the last plate ; then the bottom of the ribs must be 
 bevelled agreeably to the ascent of the groin, and the plan of it must be drawn upon the 
 level, and from thence they may be drawn perpendicular from the plan to the rake of the 
 rib ; then take a mould to the form of the rib, or the rib itself, and slide this agreeably to 
 the rake to the distance that is marked upon the bottom to be backed oS; this will show 
 how much the rib is to bevel all around. 
 
Plate 19 
 
Plate 20 
 
an INS. 35 
 
 PLATE 20. 
 
 Given, one of the Bodtj-ribs, and the Width and Height of the Side-arch, to find the Side and 
 Angle-ribs, so that the Place of the Intersection, on the Plan, shall he a straight Line. 
 
 Draw ce, at F, perpendicular to the base of the body-rib B, and equal to the height of 
 the side-arch D ; from e, draw e a parallel to c h, and from a let fall the perpendicular ahlc; 
 draw Jc m, and k I, which are the places on the plan of the intersection ; then, the ribs X> and 
 E may be described from F, as directed in the problem at Fig. 2, Plate 13 ; or they may be 
 obtained by intersecting lines, as at A and C. The first method is, however,^ much the 
 easiest in practice ; for by using the points Jc, g, and/, at E and E, as centres, the 'lines may 
 be struck by a chalk-line much sooner than the parallels at A can be drawn, and with greater 
 accuracy. But it must be recollected that four or five points will not be sufficient, in prac- 
 tice, for tracing the curve with accuracy ; and, therefore, a greater number must be found. 
 
 The way in which the groin is put together is shown below, in a manner sufficiently 
 intelligible for any workman. These groins are applicable when a window or door is to be 
 made in the side of a barrel-vault. 
 
36 GROINS. 
 
 i 
 
 PLATE 21. ^ 
 
 DEFINITION. 
 
 A Welsh groin is a groin whose side-arches are less in height than the body-arch, and 
 both the side and body-arches are given semicircles, or similar segments. 
 
 Given, iJie Body mid Side-ribs of a Welsli Groin, to find a Mould for tlie intersecting Rihs. 
 
 Divide half the side-rib B into any number of parts, and from these points 1, 2, 3, d, let 
 fall perpendiculars to ah, its base, and produce them beyond; also, from the same points, 
 draw lines parallel to a h, to intersect e /; transfer the divisions from e / to eg, and from the 
 divisions o? e g draw lines parallel to p q, the base of A, to intersect the body-rib A at 
 h, u, 10, y ; from these points, draw perpendiculars to p q, and continue them to intersect the 
 perpendiculars from B, at the points k, v, m, n; now trace a curve through these points, and 
 this will be the place of the intersecting rib on the plan; then draw two other curve lines, 
 on either side of, and parallel to this, to show the thickness of the rib on the plan ; on the 
 inside curve draw chords from I, and on the outside curve draw tangents parallel to these 
 chords. The distance between the chord and tangent shows the thickness of the stuif for 
 the intersecting rib. Draw perpendicular lines to the chords, and make the heights 1 1, 2 2, 
 3 3, &c., at I), equal the corresponding heights at B. In a similar manner draw C; then 
 will Cand Z) be the moulds by which to cut the intersecting rib. 
 
 To range the Rihs so tliat they ivill stand 2^erj)endicular over the Plan. 
 
 At the points x, v, t, i, in the base of G, erect perpendiculars parallel to the ordinates of 
 G and D, and make their corresponding heights equal to the ordinates of 5 or J. ; draw the 
 dotted curve h, u, v,y, at (7, and it will show how much is to be bevelled oiF that side of the 
 rib. In like manner, the other side D is to be bevelled. 
 
 To find a Mould to bend wider the intersecting Bib, so that the Line of the intersecting Angle 
 
 may he marlced on the Rib according to tlm Plan. 
 
 Take the stretch-out of the under side of the rib D, by bending a thin slip of wood 
 around it; mark the different points, and transfer them to the straight line he, at E; then 
 make 1 n, 2 m, &c., at E, equal to 1 n, 2 m, &c., on the plan. A curve drawn through 
 n, m, I, h, at E, will give the mould. The straight edge of the mould, when bent under, 
 must be made to correspond to the chord-line 1 2 3 c, at Z>; then, by drawing a line by the 
 curved edge of the mould, on the under side of the rib, we have the true place of the inter- 
 secting angle. 
 
 The method of framing the ribs is shown below, on the Plate. 
 
Plate 21 
 
GROINS. 37 
 
 PLATE 22. 
 
 To describe the intersecting or Angle-rihs of a Groin standing upon an octagon Plan, the Side 
 and Body-ribs being given both to the same height. 
 
 Fig. 1. ^ is a given body-rib, which may be either a semicircle or a semi-ellipse, and 
 J. is a side-rib given of the same height ; J) is a rib across the angles. Trace from E, the 
 base of both E and D being divided into a like number of equal parts, and divide the base 
 of the given rib A into the same number of parts. From these points, draw lines across the 
 groin to its centre at m, and from the divisions of the base of the rib D, draw lines parallel 
 to the side of the groin. Then trace the angle-curves through the quadrilaterals, and the 
 result will give the place of the intersecting ribs. Draw the chords a b and b c, then mark 
 the moulds B and C from E or D, taking care not to mark them from the crooked line at 
 the base, but from the straight chords a b and be. 
 
 To describe and range the Angle-ribs of a Qroin upon a circular Plan, the Side and Body- 
 arches being given, as in the last Groin. 
 
 Fig. 2. The ribs are described in the same manner as in the last example for the 
 octagon groin, or in the same manner as in Plate 21 ; and the ranging is found in the same 
 manner as is described in that Plate. E and F are the same moulds as are shown at B 
 and D. 
 
38 GROINS. 
 
 PLATE 28. 
 
 Tlie Side-rih of a Groin and Angles of Intersection heing given straight upon a circular Plan, 
 
 to find tlie Angle-rib, and the Body-rih. 
 
 Fig. 1. Let the rib A be supposed to be placed over the straight line a h, as its base, 
 which divide into any number of equal parts, as eight ; from the points of division draw lines 
 to the centre of the plan, to intersect the angles at a, h, c, d, e, f g. From these points, erect 
 perpendiculars to the line h d, and these being made respectively equal to those at A, will 
 give the curve of the rib G. K from the points a, &, c, &c., arcs be drawn with the centre of 
 the groin to intersect the base of C, at 1, 2, 3, 4, 3, 2, 1, and perpendiculars be drawn and 
 made correspondingly equal to those of A, and G be traced to these points, then G will be 
 the body-rib. 
 
 To describe the Ribs of a Groin over Stairs upon a circida,r Plan, the Body-rib being given. 
 
 Fig. 2. Take the tread of as many steps as you please, suppose nine, from E, and the 
 heights corresponding to them, which lay down at jP; draw the plan of the angles as in 
 the other groins, and take the stretch round the middle of the steps at E, and lay it from 
 a to 6 at F. Make de perpendicular io dc at B, equal to d e at F; draw the hypothenuse 
 e c ; draw perpendiculars from d c up to B, and mark B from A, as the figures direct ; then 
 B is the mould to stand over ab Sit E. Draw the chords a 4 and 4 m at the angles ; make 
 ag, 4. h, perpendicular to them, each equal to half the height d e, Sit B or E; draw the hypo- 
 thenuse g 4, and h m ; draw the perpendicular ordinates from the cords through the intersec 
 tion of the other lines that meet at the angles ; then trace the moulds D and G, from the 
 given rib A, and they will form the moulds for the angle or intersecting ribs. 
 
Plate 23 
 
Plale --I 
 
NICHES. 39 
 
 PLATE 24. 
 
 As all the sections of a sphere are circles, and those passing through its centre are equal, and the 
 greatest which can be formed by cutting the sphere, it is evident that if the head of a niche is intended to 
 form a spherical surface, the best method is to make the plane of the back-ribs pass through the centre. 
 This may be done in an infinite variety of positions ; but perhaps the best, and that which would be easiest 
 understood, is to dispose them in vertical planes. If the head is a quarter of a sphere, the front-rib, and 
 the still-plate or springing, on which the back-ribs stand, will curve equally with the vertical ones ; but if 
 otherwise, they will be portions of less circles. But it is evident, if the front and springing ribs are intended 
 to be arcs less than those of semicircles, either equal to each other or unequal, that as they are placed at 
 right-angles to each other, there is only one sphere which can pass through them; consequently, if the 
 places of the vertical ribs are mai-ked on the plan, these ribs can have only one curve. In the former case 
 no diagram is necessary ; but in the latter it may be proper to show how the vertical ribs and their situation 
 on the front-rib are found. 
 
 To find the Ribs for the Sead of a Spherical Niche, the Elevation being a Semicircle, and the Plan 
 
 a Segment of a Circle. 
 
 From the centre draw the ground-plan of the ribs as at A, and set out as many ribs upon the plan 
 as you intend to have in the head of the niche, and draw them all out towards the centre at 0. Place the 
 foot of your compass in the centre 0, and from the ends of each rib, at e and c, draw the small concentric 
 dotted arcs round to the centre rib at m and n ; and draw m g and n i parallel to r s, the face of the wall ; 
 then from q round to a upon the plan, is the length and sweep of the centre-rib, to stand over ah; and from 
 i round to o, the length and sweep of the rib that stands from o to d upon the plan ; and from g round to o 
 is the sweep of the shortest rib, that stands from e to f upon the plan. 
 
 To bevel the Ends of the Back-rihs against the Front-rib. 
 
 The back-ribs are laid down distinct by themselves ab C, D, and E, from the plan. Take 1 to 1', in 
 A, and set it from 1 to 1' in i) ; it wiU give the bevel of the top of the rib i>. And from A^ take from 
 2 to 2' upon the plan, and set from 2 to 2' in the rib E; it will give the bevel of the top. 
 
 To find the Places of the Back-ribs where they are fixed upon the Front. 
 
 From the points a, e, and e, at the ends of the ribs, in the plan, at A, draw the dotted lines up to the 
 front-rib, to a', c', and e', which will show where they are to be fixed upon the front-rib. The double circle 
 upon the front-rib shows the ranging. 
 
40 NICHES. 
 
 PLATE 25. 
 
 To find the Ribs of a Spherical Niche, the Plan and Elevation being given Segments of 
 
 Circles. 
 
 The elevation of the niche is shown at A, being the segment of a circle whose centre is t. 
 At B is the plan of the same width, which may be made to any depth, according to the 
 place it is intended for ; its centre is c. On the plan B, lay out as many ribs as it will 
 require, and draw them all tending to the centre at c ; they will cut the plan of the front-rib in 
 g, f, e, d. Through the centre c, draw the line m n, parallel to a b, the plan of the front-rib ; 
 put the foot of your compass in the centre at c, draw the circular lines from a, g, f e, d, to 
 the line m n, and make c s equal to w ^ ; that is, make the distance from the middle of the 
 chord-line m n to s, the centre of the arch at G, equal to the distance from the middle of the 
 chord A B at J., to the centre at t ; then place the foot of your compass in s, as a centre, and 
 from the extremities m or n, describe the arch at G. With the same centre, draw another 
 line parallel to it, to any breadth that you intend your ribs shall be ; then G is the true sweep 
 of all the back-ribs in the niche. 
 
 The points I, k, i, h, show what length of each rib will be sufficient from the point m ; 
 from h to m is the rib that will stand over d x ; from i to m is the rib that will stand over 
 e y ; from 7c to m over / v ; and from I to m over g Wj the other half is the same. 
 
Plate 26 
 
NICHES. 41 
 
 PLATE 26. 
 
 The Plan of a Niche in a circular Wall being given, to find the Front-rih. 
 
 B is the plan given, Avhich is a semicircle whose diameter is a h, and a, i, Jc, I, m, h, the 
 front of the circular wall. Suppose the semicircle B, to be turned round its diameter a h, so 
 that the point v may stand perpendicular over h in the front of the wall, the seat of the semi- 
 circle standing in this position upon the plan will be an ellipse. Then divide half the arch 
 of B upon the plan into any number of equal parts, as five ; draw the perpendiculars 1 d, 
 2 e, 3 /, 4 (/. Upon the centre c with the radius c h, describe the quadrant of a smaller circle, 
 which divide into the same number of equal parts as are round B. Through the points 1, 2, 
 3, 4, 5, draw parallel lines to ah, to intersect the others at the points d, e,f, g, h. Through 
 these points draw a curve : it will be an ellipse. Then take the stretch-out of the rib B, 
 round 1, 2, 3, 4, 5, and lay the divisions from the centre both ways at F, stretched out ; take 
 the same distances d i, e h, fl, g m, from the plan, and at F make d i, eh,fl, equal to them, 
 which will give a mould to bend under and mark the front-rib, so that the edge of the front- 
 rib will be perpendicular to a, i, h,l,m. 
 
 The curve of the front-rib at J. is a semicircle, the same as the ground-plan ; and the 
 back-ribs at (7 D and E are likewise of the same curvature. 
 
 The curve of the mould F will not be exactly true, as the distances di, eh, fl, &c., at 
 B, are rather too short for the same corresponding distances upon the mould at F; but in 
 practice it will be sujBBciently near for plaster- work ; but those who would wish to see a 
 method more exact, may examine Plate 12, fig. 1, where G is the exact soffit that will bend 
 over its plan at B. 
 
 In applying the mould F when bent round the under edge of the front-rib, the straight 
 side of the mould F must keep close to the back-edge of the front-rib ; and the rib being 
 drawn by the other edge of the mould, will give its place over the plan. 
 
42 NICHES. 
 
 PLATE 27. 
 
 TJie Plan and Ehvatmi of an Ellipsoidal Niclieheing given, to find (lie Curve of the Rihs. 
 
 Fig. A. Describe every rib with a trammel, by taking the extent of each base from the 
 plan whereon the ribs stand to its centre, and the height of each rib to the height of the top 
 of the niche ; it will give the true sweep of each rib. 
 
 To hack the Rihs of the Niche. 
 
 There will be no occasion for making any moulds for these ribs, but make the ribs them- 
 selves ; there will be two ribs of each kind. Take the small distances le,2d, from the plan 
 at B, and put it at the bottom of the ribs D and E, from d to 2, and e to 1 ; then the ranging 
 may be drawn off by the other corresponding rib; or with the trammel, as for example, at 
 the rib E, by moving the centre of the trammel towards e, upon the line e c, from the centre 
 c, equal to the distance 1 e, the trammel-rod remaining the same as when the inside of the 
 curve was struck. 
 
 Given one of the common Bibs of the Bra,chetlng of a Cove, to find the Angle-hrachet for a 
 
 o-ectangiilar Room. 
 
 Let H be the common bracket, h c its base ; draw h a perpendicular to h c, and equal to 
 it. Draw the hypothenuse a c, which will be the place of the mitre ; take any number of 
 ordinates in H, perpendicular to he, its base, and continue them to meet the mitre-line a c, 
 that is, the base of the bracket at /; draw the ordinates of / at right-angles to its base ; then 
 the bracket at I, being pricked from H, as may be seen by the figures, will be the form of the 
 angle-rib required. 
 
 The way to obtain the angle-bracket of a common plaster cornice is similar, and may be 
 seen at K L. 
 
Plate 27 
 
 A 
 
 '■:-r 
 
 / 
 
 II ' 
 
 Li 
 
 2,/ 
 
 ill" 
 
 G 
 
 'k^ 
 
 . \. 
 
 V i. 
 
 /'' 
 
ROOFS. 43 
 
 PLATE 28. 
 
 ROOFS. 
 
 To find ilie principal Lines of a Roof. 
 
 Let AB C D be the plan of a roof; take D L half the width of the roof, and make D F 
 and Coequal to it. Join EF; and having bisected E F aX H, take (r IT equal to the height 
 of the roof, and perpendicular to E F, and join Q E and OF, and these lines will be the 
 length of the principal rafters. Join H C and HD ; produce HE, and take HI, equal to 
 H G; join IC, and it will be the length of each hip-rafter. Draw a line, as a' &', perpendicu- 
 lar to H C; and with the centre c', draw an arc tangent to CI, cutting G H at d'. Join d' a' 
 and d' V, and the angle a' d' V is what is generally termed the backing of the hip-rafter. 
 The bevel is shown ?ki M, st being parallel to C H 
 
 To find the Bevels of a Purline against a Hip-rafter. 
 
 Two cases are here exhibited ; the first is when the purline lies level, having two sides 
 horizontal. This is an easy case. The down bevel is shown at M, and the other at N. The 
 second case is that in which the purline stands at right-angles to the rafter. From the point 
 c, the uppermost edge of the purline, as a centre, describe a circle. Draw the two lines h h 
 and e n tangent to the circle, and parallel to F D. Then from the points g and h, where the 
 sides of the purline produced meet the circle, draw gi and hm also parallel to F D. Draw 
 h i and m n perpendicular to these lines, and join kf and fn. The down bevel is shown at 
 0, and the side bevel at P. 
 
 To find the Bevels of a Jaxilc-rafter against the Hip-rafter. 
 
 The angle xfnis the side bevel, /a? being perpendicular to FD. The down bevel is 
 the angle i^G^S 
 
44 ROOFS. 
 
 PLATE 29. 
 
 The lines for a roof having a square or rectangular plan are found by the methods 
 developed on Plate 28. 
 
 Fig. 1 is the plan of a roof Since the plan is a trapezoid, the inclinations of the hips 
 will differ. Upon the lines A C and b d, as diameters, describe semicircles, cutting the ridge- 
 line at E and f. From these points, draw lines to the extremities of the respective diameters, 
 and these lines will be the bases of right-angled triangles, whose height must equal that of 
 the roof, and whose hypothenuse will equal in length the hip-rafters. The bevels for backing 
 the hips are found as in Plate 28. 
 
 Fig. 2 is an octagonal plan for a roof, whose height is c b. The lines are obtained as 
 in the preceding cases. 
 
 llie Plan of a 'polygonal Roof being given, and a Slde-rih of any Form, to find the Angle-rib 
 
 and the Form of the Covering. ^ 
 
 Figs. 3 and 4. Let A b d be the given plan, and a 1 2 3 f be the given side-rib. Divide 
 a F into any number of parts, and, by means of lines drawn and measured as in the figure, 
 describe the angle-rib b 1' 2' 3' G. Draw a e perpendicular to A b, and mark upon it the 
 divisions of a F. Make //', g g', h h', respectively, equal to d d', c c', b b', and through 
 /', g', h', trace a curve ; then the figure E a B will be that part of the covering which is to 
 be bent over a b c on the plan. 
 
Plate 2S 
 
 rig.z. 
 
 Fu/.l. 
 
 rig 3. 
 
Plate 30 
 
 Fig.l. 
 
 fig. 3. 
 
 Tui.4. 
 
SKYLIGHTS. 45 
 
 PLATE 30. 
 
 SKYLIGHTS. 
 
 Oiie of the Rihs being given, the square Plan of the Opening or Well, and the octagon Curh above, 
 to find the Ribs and the springing Curve, lohere the Foot of the Ribs come, so that the interior 
 Finish may correspond with the Curb. 
 
 Fig. 1. Let C be the given rib. From various points in it, draw lines perpendicular 
 to e b, and continue them around the curb, parallel to its sides. Erect the perpendiculars 
 to gf at D, and make them respectively equal to those at C; then is D the angle-rib. From 
 the points where the perpendiculars to e & intersect a b, erect others to a b, and make them 
 respectively equal to those at C; then will the curve at S be the springing curve. 
 
 The Plan of the Opening being square, to find the springing Curve and the Ribs, so that the 
 
 interior Finish may be spherical. 
 
 Fig. 2. Upon the side mn of the plan, describe the semicircle^; this will be the 
 springing curve (for all sections of a hemisphere, perpendicular to its base, are semicircles). 
 From the centre of the circular curb at A, draw the rib at C, with a radius equal to half the 
 diagonal of the plan. All the ribs will have the same curve. Their several lengths may be 
 determined by drawing, with the centre of A, small concentric arcs from the points a, b, c, 
 around to 1, 2, 3. Thence, draw perpendiculars to^ s, meeting C at V, 2', 3'. The distances 
 from these points towards i will be the lengths of the ribs. 
 
 The vertical section of a segmental Dome passing through its Centre, the Plan of tlie square 
 Opening, and the circidar Curb, being given, to find the springing Curve and the Ribs. 
 
 Fig. 3. Let the section over the diagonal q m, as shown in the figure, be given, and 
 find its centre s. Bisect m w by a perpendicular, and take a o, equal to s i. With the radius 
 o m, draw the curve m b w, and it will be the springing curve. The angle-rib is shown at G, 
 and the lesser ribs, all having the same curve, are obtained as explained in the last problem. 
 
 Fig. 4. These lines are obtained on the same principle as the others. The springing 
 curve is traced from C. 
 
46 SKYLIGHTS. 
 
 PLATE Bl. 
 
 Having given the rectangular Plan of the Well and the elliptical Giirh of a Shylight, to find the 
 Bibs and springing Curves, so that the Finish may he ellipsoidal. 
 
 Since all sections of a prolate-ellipsoid perpendicular to its axis are circles, the rib that 
 stands over e & at J. is part of a circumference whose radius is the semi-conjugate diameter. 
 This rib is shown at i). 
 
 Since all sections of the ellipsoid not perpendicular to the axis are ellipses, all other ribs 
 will be parts of ellipses. The conjugate axis of these is in every case the same, and equals 
 the conjugate diameter of the ellipsoid. The semi-transverse axis in each case equals the 
 distance from the centre s, through the desired rib, to the circumscribing ellipse, which is 
 described proportionate to the curb. The rib which stands over 5 j9 is shown at ^. The 
 distance cd oi E equals that from p to the curb on the plan. The rib which stands over o s 
 is shown at i^. 
 
 Since all parallel sections of the ellipsoid' are similar, the springing curves are similar to 
 the parallel section passing through the centre. Upon n q, as a diameter, describe the semi- 
 circle at G) this is one springing curve. Taking the height of this as a semi-conjugate axis, 
 and 7nn as a transverse axis, describe the semi-ellipse at B; this gives the other springing 
 curve. 
 
PlaLc 31 
 
Plate 32 
 
 
 1 
 
 1 
 
 I 
 
 1 
 
 1 
 
 \3 
 
 Z' \ 
 
 1 
 
 
 
 2' 1 
 
 1 
 
 
 c 
 
 ^ 
 
 a, c b a c 
 
 i%7 2. 
 
DOMES. 47 
 
 PLATE 32. 
 
 OF DOMES. 
 To find the Covering of a hemispherical Dome. 
 
 Fig. 1. Describe a circle for the plan of the dome. Take the stretchout, a &, of a quarter- 
 circumference, 5 d, and place it from c to 4' at B. Take ah &i B, of any length which the 
 board will admit, and describe upon it a semicircle. Divide half of this into any number of 
 equal parts, as four, and divide also cM into four equal parts, and through all the points of division 
 draw lines parallel to the base a h. Make the lines 1' d, 2' e, 3'/, each equal to the corre- 
 sponding lines within the semicircle, and trace the curve a d e/4'. By this means, we obtain 
 the form of the boards, which, when bent over, will exactlj^ cover the hemisphere. 
 
 To find the Covering of a segmental Dome. 
 
 Fig. 1. Let c h be the height of the segment. Draw the cord g h, and the line 1 2 per- 
 i:)cndicular to c g. Take the stretchout of the arc g h, and place it from c to 4' at C. Take 
 the line a h at C, equal to twice 1 (7 at A, and upon it describe a small segment of a circle 
 whose height shall equal 1 2 at J.. Proceed as in the last case. 
 
 In a similar manner, the covering for various domical figures may be developed. The 
 method for obtaining the covering for an ogee figure is exhibited. 
 
 To find the Form of the Boards to cover a hemispherical Dome horizontally. 
 
 Fig. 2. Let the semicircle at A, whose centre is c, be a vertical section through the 
 centre of the dome. Divide the quarter-circumference d h into a number of equal parts, each 
 being equal to the width of a board. Extend the radius cd to m, and through the points 
 1 and 2 draw a line to t. Then, with t as a centre, describe arcs from the points 1 and 2, 
 which gives the form of the board. The others may be found in like manner. 
 
 Now, suppose that the centre of the board which lies between 5 and 6 is the last that 
 can conveniently be found — to find the others : with the centre y, continue the arc from 5 
 around to 0, and through the points 5 and draw a line to meet the circumference at e. From e 
 draw radial lines to 5, 6, 7, 8, &c. Also, draw lines from 6, 7, 8, &c., parallel to a 6, meeting 
 c d at 6', 7', 8', &c. 
 
 Transfer 6' 6 to a 6 at B, and take h d, equal to 6'/ at A. Draw ad; make h c equal to 
 n h ; draw dc, and bisect the angle dc h. At the middle point of the line a d erect fe per- 
 pendicular, meeting the bisecting line at e. Through the points a., e, and d, draw an arc. 
 
 If the line a d becomes too long to use conveniently, bisect also the angle e c a, as at C, 
 and describe the arc a e upon the same principle. 
 
48 ' ELLIPSOIDAL DOMES. 
 
 PLATE ee. 
 
 ELLIPSOIDAL DOMES. 
 
 Fig. A is the plan of a, ellipsoidal dome ; B is the longest section, G the shortest section : 
 aa'm B, and 5 6 in (7, show how to square the purlines, so that one side may be fair with 
 the surface of the dome ; the dotted lines from aa in B, and hh in C, show how to get the 
 length and width of the purline in A ; but if the sides of the purline were made to stand 
 perpendicular over the plan, the curve of it would be found in the same manner; then it 
 would require no more than half the stuff that the other would, and take only half the time. 
 
 Hoio to proportion the inside Gurh for the Skyligld, so that it will aiiswer to the Surface 
 
 of the Dome. 
 
 Draw the diagonals i Zand kh at A, and let de, or gf be the length; then eg, or df 
 wdll be the breadth of the curb; because every section parallel to the base will be propor- 
 tional to the base. 
 
 The ribs (Figs. 4 and 5) in this case are obtained in the same manner as the ribs for an 
 ellipsoidal niche. 
 
 To find tlie Form of a Board to cover any Part of the Dome when hent up to the Crown. 
 
 Divide one-quarter of the base of the dome at D into three equal parts, r o, op, p h' . In 
 finding a board over sro in the plan, take the triangle sro inD, and lay it down at Fig. 2; then 
 draw the line s Z> a at right-angles to r o, and describe a rib, s 5 c, to the height of the dome, 
 and to the length of the perpendicular of the triangle s r o. Divide it into five equal parts, 
 lay thern along the line 6 a, and find the mould from the triangle s r o, as the letters are 
 marked. The board (Fig. 2) will be found in the same manner. 
 
 Eemark. — In practice, you are to divide one-quarter of this dome into as many parts 
 as you think the breadth of the boards will require ; and the boards, when obtained by this 
 method, will fit with very great exactness. This is divided only into three, that the parts 
 may be clearly seen by learners. 
 
 If the boards are obtained for one-quarter of the circuit, the corresponding boards 
 in the other three-quarters will not require other lines; for every board in the first quarter 
 will be a mould for three more boards. 
 
Plate 33 
 
 Fu) .4. 
 
 Fig. 5. 
 
Hate 34 
 
 r^ ^ ^ . :: :: 'M 
 
 ) ■ ' ^i..^ 
 
 
 1 :: :; ;; :. :: ^ .1 
 
 f '5' t 
 
 f •§ V 
 
 Fiij.l . 
 
 ~^ 
 
 Fig.Z . 
 
 ^ 
 
 ^r 
 
 »^ — ™ — ^ — 
 
 Fu,.3 
 
 Fio . -/. 
 
 _/•>.;. 
 
 ^ F'if) . 6 . 
 
 Fiq.7. 
 
 T 
 
 T" 
 
 Fig.S 
 
 T- 
 
 -^ 9 w 
 
 "^ 
 
 Fi^.!>. 
 
 Fig. 10 
 
PRACTICAL CARPENTRY. 
 
 [The designs which heretofore occupied this portion of the work have been laid 
 aside. They were, in their time, excellent ; but such advances have since been made in the 
 art as to render them useless to the carpenter of the present day. The designs substituted 
 are not offered as a complete series, to illustrate every case likely to arise, but are intended 
 to comprehend all the most approved principles of framing in use at this time. These prin- 
 ciples are difficult and important, and the designs which exhibit them will afford great 
 practical assistance to both architects and carpenters. — Editor.] 
 
 PLATE 34. 
 
 SCARFING. 
 
 On this plate are exhibited ten different methods for scarfing timber. Some are secured 
 by iron pins, and in a few cases iron plates are also added. In cases where vertical pressure, 
 and not traction, is to be sustained, the best, but more expensive plan, is to bind the scarf 
 ■with iron straps and dispense with the bolts. Figs. 5 and 6 have no such aid, but are brought 
 tightly together by wedges. Many other designs for scarfing have been offered, but being 
 more complicated, they are inferior to these simple forms. 
 
 (49) 
 
50 SCARFING. 
 
 PLATE 85. 
 
 This plate exhibits additional methods of scarfing. Perspective views of the pieces are 
 given, that there may be no difficulty in understanding the work. We subjoin some selected 
 rules, which have reference to the kind of timber used. 
 
 In oak, ash, or elm, the whole length of the scarf should be six times the depth or 
 thickness of the beam, when there are no bolts or straps. 
 
 In fir (or pine), the whole length of the scarf should be about twelve times the thickness 
 of the beam, when there are no bolts or straps. 
 
 In oak, ash, or elm, the whole length of a scarf depending on bolts only should be about 
 three times the breadth of the beam ; and for fir beams, it should be about six times the 
 breadth. 
 
 When both bolts and indents are combined, the whole length of the scarf for oak and 
 hard woods may be twice the depth ; and for fir and soft woods, four times the depth. 
 
Plate 3o 
 
 
 
 
 
 / 
 
 
 :^ 
 
 _£i_ 
 
 Fig J . 
 
 
 
 
 L 
 
 
 Fig.Z 
 
 _£] a Cl □ £: a_ 
 
 -D cir- 
 
 Tzg.3 
 
 _/" 
 
 1/ 
 
 
 _tl a_ 
 
 ""? "^^ T?~ 
 
riate 36 
 
 Fig .1 
 
 Fig Z . 
 
 Fi^.3. 
 
 Fig. 6. 
 
 Fig. 6 . 
 
TRUSSING. 51 
 
 PLATE 86. 
 
 TRUSSING. 
 
 Figs. 1 and 2 show the methods of giving the requisite stiffness to joists. Stout oak 
 laths, nailed on in the manner represented, improve their qualities in this respect very much. 
 
 Figs. 3 and 4 exhibit a method for trussing girders. A is the king-bolt, and B is the 
 butt-bolt. 
 
 Fig. 5 shows a simpler and more effective method. The girder is hung on each side by 
 iron bars, secured by nuts at the ends. By turning these, any degree of camber may be 
 given to the girder. 
 
 Fig. 6 presents a still more effective method, though its use is limited to certain parts 
 of a building. The use of iron, in the manner here represented, is the great characteristic 
 feature in modern Carpentry. A girder, well constructed on this plan, will support a brick 
 wall built upon it. 
 
52 TRUSSING, 
 
 PLATE 37. 
 
 This Plate exhibits two designs for trussed partitions. It is a matter of great difficulty 
 to construct partitions so as not to spring and crack the plastering ; especially when there is 
 no support beneath, and when they are pierced by doors. In all such cases, they must be 
 trussed in a manner at least somewhat similar to those shown in the Plate. These will span 
 from twenty to forty feet. 
 
Plate 3; 
 
 Fi^. 
 
 
 7%. 2. 
 
ROOFS. ^^ 
 
 PLATE B8. 
 
 HOOFS. 
 
 Fie. 1 is calculated for a small building. The ends of the ridge-pole, purlins, and plates, 
 shown in this and the following cases. The span may be twenty or twenty-five feet. 
 
 Fi^. 2 is a roof for the purlins to be framed in. The dotted lines show the lower edge 
 of the common rafters. '' The span may be from twenty to thirty-five feet. 
 
 Fio- 3 is a much heavier roof, the tie-beam being supported by two queen-posts, so as to 
 give room for a passage or apartment in the roof It is calculated for a span of forty or fifty 
 feet. 
 
 are 
 
54 
 
 ROOFS. 
 
 PLATE 39. 
 
 Fig. 1. This roof is somewhat similar to the last, but essentially different in the con- 
 struction of the queen-posts. The span is forty or sixty feet. 
 
 Fig. 2 is a very light roof, having forty or sixty feet span. It may be used when the 
 ceiling below is to be arched. The sheathing may be laid directly on the purlins, for a metal 
 
Plate 39 
 
 Fu/.l. 
 
Hate 40 
 
 Fi^.l. 
 
ROOFS. 55 
 
 PLATE 40. 
 
 Fig. 1 is a very simple roof, designed upon the more recent principles which have revo- 
 lutionized Carpentry. An oaken block is placed between the upper ends of the principal 
 rafters, after the manner of a key-stone ; the grain of the block running in the same direc- 
 tion as that of the rafters. By this arrangement, the effect of shrinkage is rendered imper- 
 ceptible. An iron bar is passed through the block, and gives support and camber to the 
 tie-beam. The foot of each principal rafter is bolted with iron. The span of this roof may 
 be from twenty to thirty feet. 
 
 Fig. 2 is another roof, designed to contain an apartment. A horizontal piece is placed 
 between the bases of the queen-posts, that they may not be displaced by the lateral thrust 
 of the trusses. The span may be from forty to fifty feet. 
 
56 EOOFS. 
 
 PLATE 41. 
 
 Fig. 1 is a design for a roof having very considerable span. It may extend from fifty 
 to eighty feet. We may here see the method of suspending the tie-beam by iron bars, 
 instead of by king and queen-posts. Every purlin has its corresponding truss. Between all 
 pieces which do not come fairly end to end, oaken blocks are placed, as before described, 
 The blocks are shaded, in this Plate. But what is here more particularly worthy of remark, 
 is the character given the design by the position of the trusses. It will be observed that 
 they have somewhat the appearance of lattice-work. This principle, we believe, is of Ame- 
 rican origin ; and is one of the most important improvements which have been introduced 
 into Carpentry of late years. The arches for domes and arched roofs, when trussed by this 
 lattice-work, are lighter, and more durable, than when constructed on any other jDlan. The 
 example here given exhibits the principle satisfactorily ; but it is capable of many impor- 
 tant modifications and applications, which should be thoroughly studied by our carpenters. 
 
 Fig. 2 is another roof, similar in principle, but heavier in proportion, and of shorter 
 span. It may extend from fifty to sixty-five feet. 
 
 Where architectural efiect is not an object, preference is now almost universally given 
 to flat roofs. The way in which this is managed in large roofs, is exhibited in both these 
 designs. The purlins, when necessary, are elevated on short, upright supports, standing on 
 the principal rafters ; and the walls are built considerably above the ends of the tie-beam. 
 By such an arrangement, any degree of weight may be given to the cornice. 
 
i'-i-. 
 
 <'--; 
 
 Plate 41 
 
ROOFS. 57 
 
 PLATE 42. 
 
 Fig. 1 is another design for a large, heavy roof, having a span of about thirty or sixty 
 feet. The oaken blocks are, in this case, dispensed with. The ceiling-joists are shown 
 asainst the tie-beam. 
 
 *o" 
 
 Fig. 2 is a jfloor, designed to have a span of twenty or forty feet. The ends of both floor 
 and ceiling-joists are exhibited. The trussed girder which supports the floor, combines, as 
 may be seen in the figure, both the methods described in Plate 36, Figs. 6 and 6, with a 
 shght modification. 
 
 ^o^ 
 
 Fig. 3 exhibits a section of the same floor, at right-angles to the above, through the line 
 a b, Fig. 2. The shaded parts are the sections of the girders, and show their proper distance 
 apart. 
 
58 ROOFS. 
 
 PLATE 48. 
 
 Fig. 1 represents the framing of a church spire. It is quite light, but very strong. The 
 body is square, but the spire proper has a conical finish. The whole rests upon frame-work 
 supported by the outer walls; and in this case there need be no support immediately beneath 
 the spire. 
 
 Fig. 2 shows a horizontal section below the first window. Fig. 3 is a section through 
 the second window. Figs. 4 and 5 are the naked flooring. 
 
Plate 43 
 
 i I 
 
ROOFS. 59 
 
 PLATE 44. 
 
 Fig. 1 exhibits the framing for the roof of a church having a vaulted nave. It will be 
 observed that the opposite sides of this figure furnish two designs, either of which are suffi- 
 ciently substantial. 
 
 Fig. 2 is a similar design, on a smaller scale. The roof, in this case, has a higher pitch, 
 but about the same span as the other. 
 
60 ROOFS. 
 
 PLATE 45. 
 
 On this Plate is shown a design for the roof of a small Gothic church, or hall. The 
 vault is ribbed, and the finish between the ribs is also exhibited. The ribs terminate in 
 some tracery on the upper portion of the walls, which is represented on the lower portion 
 of the Plate. 
 
niite -15 
 
ROOFS. 61 
 
 PLATE 46. 
 
 This exhibits a design for an open-work Gothic roof for a church, hall, or open shed, for 
 large assemblies. The design is simple, and needs no remark. A different view of the 
 same design is shown on the bottom of the Plate. 
 
62 ROOFS, 
 
 PLATE 47. 
 
 We have here exhibited a design for an open-work roof for a small Gothic church or 
 hall, in the perpendicular style. A considerable degree of ornament always accompanies 
 this style. Below is shown the inner-wall decoration. 
 
Plate A. 47 
 
ROOFS. 63 
 
 PLATE 48. 
 
 This Plate presents a design for an arched roof of very great span. It may extend as 
 much as one hundred and twenty feet, or even more, with safety, if the buttresses are very 
 strong. The arch is made by bending stout planks to the desired curve, and bolting them 
 together, which forms an arch of great strength and stability. Oftentimes, the arch is with 
 advantage made of the lattice-work before referred to. The stays which connect the arch 
 and principal rafter, consist of two pieces of plank, one on each side of the rafter and arch, 
 secured by long bolts. 
 
64 DOMES. 
 
 PLATE 49. 
 
 DOMES. 
 
 This Plate exhibits a design for a dome. The framing is simple, although, from the 
 nature of the sectional drawing, it appears complicated. A lantern is arranged for external 
 effect, but does not extend to the interior. 
 
Plate 49 
 
 l^ 
 
Plate 50 
 
 Fig. 3. 
 
 Fig.Z. 
 
 Tiy.l. 
 
DOMES. 65 
 
 PLATE 50. 
 
 Fig. 1 shows the plan of the preceding design, taken from just above the ceiling-line. 
 Fig. 2 is a horizontal section of the lantern, and Fig. 3 the roof of the same. 
 
66 BRIDGES. 
 
 PLATE 51. 
 
 On this Plate is shown the centring for an arch, as appHed to a bridge. It is so con- 
 structed as to have no other support than at the abutments. 
 
 Fig. 1 is a vertical section, passing between the key-stone and the adjacent voissoir. 
 
 Fig. 2 is a side view of the cradling. 
 
Plate 51 
 
 g . [ ^ xJJJJXPJ^^^^-^^-^^^^^^ccc^^ ^ t 
 
 Fi^.l. 
 
 Fi^. Z 
 
WINDOW-CASING. 67 
 
 PLATE 52. 
 
 This Plate exhibits a design for the construction of a window-case, arranged for inside 
 shutters. 
 
 Fig. 1 is a horizontal section of the jamb. The shutter is folded into the jamb. The 
 circles above represent the weights with which the sash is hung. 
 
 Fig. 2 is a vertical section of the window-sill, having pannelling below. 
 
JOINERY. 
 
 H A N D - R A I L I N G . 
 
 PREFACE. 
 
 In that elegant branch of the building art called Joinery, Stairs and Hand-railing take 
 precedence. For the manner of finding the face and falling moulds, I have laid down correct 
 methods founded on the most obvious principles, and which have been put in practice by 
 myself and by those who attended the instructions given by me, in this art, some years 
 since, and found to answer well in every case. 
 
 The superior advantages, in every respect, of the new plates on hand-railing, over those 
 published in the former editions of this work, will, I trust, be deemed a sufficient reason for 
 the change made by me in this department of the Carpenter's Guide. I have retained those 
 plates on hand-railing, by P. Nicholson, which are considered useful ; and hope that the 
 alterations made in this department of his work, will meet the approbation of Carpenters 
 generally. In conclusion, I think it proper to say that, for the method of finding the butt 
 joints, Plate 55, I am indebted to an eminent stair-builder of this city, whose mechanical 
 skill in joinery, I, with others, hold in high estimation. 
 
 WILLIAM JOHNSTON, 
 
 Architect, Philadelpliia. 
 
 PLATE 53. 
 
 Plan and Elevation of a Neicel Post Staircase. /Scale i an inch to a Foot. 
 
 To draw tJie Ramp. 
 
 Make A B equal to A G, draw C D at right-angles with the rail, also produce the hori- 
 zontal line P until it intersects at D, which is the centre of the ramp. 
 
 (68) 
 
HAND-RAILING. 69 
 
 PLATE 54. 
 
 Plan of a stair-case, showing how to arrange the steps at the circle, so as to allow the 
 string-board to be formed without the easing (usually made) on its lower edge, caused by 
 making the tread of the steps greater or less at the circle than at the flyers ; this plan also 
 admits of the balusters being the same length, and nearly the same distance apart, as at the 
 flyers. 
 
 To draiv the Plan. 
 
 Describe the equilateral triangle ABC; draw the right line ED, touching the face of 
 the string-board; produce CA and CB, to intersect it at D and E; then is the right line 
 ED equal to the semicircumference of the circle. Upon this line lay ofi" the tread of a step, 
 P, and draw lines from these points to the centre C; which gives the position of the risers 
 KK on the circular part of the string-board, at the points S S. The position of the same 
 risers on the carriage, is found by adding to the distance D P or E, whatever may be 
 requisite to make a full tread, and place it from -A to TF^ which gives the position of the risers 
 iViV and Z"^ on the carriages. 
 
70 HAND-RAILING. 
 
 PLATE 55. 
 
 Fig. 1 is a plan of the rail for Plate 54 ; the stretch-out is found by the same method as 
 in the foregoing Plate. 
 
 To draw the falling Moulds for the Rail. 
 
 Fig. 2. Let P be the pitch-board, and A the beginning of the circular part of the rail ; 
 from the line A H, place the stretch-out of the outside and inside of the rail, to C and D ; 
 and from the line D B, set up the height D F ox C E, which is equal to a rise and a half 
 Having found the stretch-out and height, place half the thickness of the rail on each side of 
 the central points F, E and H, as denoted by the small circles; then connect the upper 
 heights, E F, with the lower one, H, which completes the falling moulds. 
 
 To cut the centre or butt joints, divide the distance F E into two equal parts ; draw the 
 line H L, and at righ1>angles with this line, draw the lines jP/and E K, which gives the 
 joints required. 
 
 To find the Spring of the PlanTc. 
 
 Fig. 2. Take B G, equal to C h, Fig. 1, and erect at (7 a perpendicular to meet the 
 hypothenuse of the pitch-board produced at /; draw / parallel to B G; then is the distance 
 O E the spring of the plank. 
 
Ha.te 55 
 
Plate 56 
 
HAND-HAILING. 71 
 
 PLATE 56. 
 
 To draw tlie Face-mould for the Rail. 
 
 Fig. 1. Draw the chord-line AD to the plan of the rail, also the base-line P, at any 
 convenient distance above it ; make the length of this line equal to the dotted line on the 
 plan, and set the height NF of the falling moulds, Plate 55, from to B; draw B P; then 
 draw ordinates through the plan, perpendicular to the base-line, touching the chord P P; 
 also drsiw the ordinates £ B, B B, &c., at right-angles with this chord, and make the distances 
 1 2, 3 4, &c., on the face-mould, equal to 1 2, 3 4, &c., on the plan. 
 
 The circular part being found, draw the straight part by keeping it parallel to the line 
 of the joint S. In applying this mould to the plank, care is to be taken that the chord R P 
 be kept parallel to its edge. 
 
 As this method of finding the face-mould does not admit (if three inch plank be used) 
 of more than four or five inches of straight rail being attached to the circular part, another 
 method is shown below, by which the straight rail can be extended at pleasure. 
 
 Fig. 2. Let Q be the plan of the rail, and AB (7 the pitch-board; draw the ordinates 
 1 2, 3 4, &c., at right-angles to CB; place the spring E, Plate 55, from AtoD; draw JD E 
 at right-angles to A C. Make D E, at N, equal to ED; draw E F, also C O, parallel to it; 
 draw the lines 0, 0, 0, &c., from the points made by the intersection of the ordinates with the 
 convex and concave sides of the rail, and produce them to the line G O; draw (7/ at right- 
 angles with C A, make /J equal to EA, join JK, parallel to JK, draw the ordinates LL, 
 &c., and with (7 as a centre, draw all the concentric lines to intersect with the line CR, 
 and continue those lines parallel to A C, and at the points of intersection with the ordinates, 
 trace the face-mould P. The dotted line S shows the over wood for cutting the square or 
 butt joint. 
 
72 HAND-RAILING. 
 
 PLATE 57. 
 
 Fig. 1 is the plan of a staircase having eight winders. 
 
 To draw the falling Moulds. 
 
 Fig. 2. Let A B\)Q the stretch-out of the convex side of the rail, and A I the straight 
 portion attached to the circular part; draw the flyers If and O, and the four winders ODE 
 and F; also draw the hase-line B I, a^t any convenient distance below the point O; raise the 
 rail five inches above the line of the noseings, from the point ^to /; also make the distance 
 A L equal to the distance A L, Plate 58, and proceed to draw the moulds as before described 
 in Plate 55. 
 
HAND-RAILING. 
 
 PLATE 58. 
 
 To draw ilw Face-mould. 
 
 Let J. m B be the plan of the rail; draw th« chord A B, also the line CD, parallel to it; 
 make the lines ^i^ (r equal in height to the lines B L I, Plate 57. Join GH-, also draw IJ 
 parallel to CD, and at the point J let fall the perpendicular line J K. Join KM, which 
 gives the directing ordinate on the plan ; draw a sufficient number of ordinates to meet the 
 chord NO', also draw /P at right-angles with the line HO, and with the distance KM, 
 from the point /as a centre, bisect the line /Pat P. Join J P, which gives the directing 
 ordinate for the face-mould; transfer the ordinates from the plan, and set them from the 
 chord ON, and through the points trace the face-mould. Take the distance IS, set it from 
 Tto Z on the chord, and join Zm; with this bevel, the edge of the plank must correspond, 
 before you apply the face-mould to its upper and lower surface. 
 
 10 
 
74 HAND-RAILING. 
 
 PLATE 59. 
 
 To draw tlie Sci-oll of a Hand-rail. 
 
 Fig. 1. Make a circle 31 inches diameter; divide the diameter into three equal parts; 
 make the square in the centre equal one of these parts, and divide each of its sides into six 
 equal divisions, with the centres 1, 2, 3, 4, &c. ; complete the outside revolution, set the 
 width of the rail from E to B, and go the reverse way to complete the inside revolution. 
 
 If a scroll of less diameter be required, draw the dotted lines G A for the straight part 
 of the rail, and a scroll of one-quarter revolution less is given. 
 
 To draw the falling Moidd for the Scroll. 
 
 Fig. 2. Take the pitch-board, and let AB h& the stretch-out of the convex side of the 
 rail. Lay half the thickness of the rail on each side of the upper line of the pitch-board, 
 shown by the small circle ; draw the line E C, and the horizontal line F E, and complete the 
 under edge of the mould by intersecting lines. 
 
 In forming this easing, the mould should not come to a level at the joint but continue 
 to descend for a few inches past it. 
 
HAND-RAILING. 75 
 
 PLATE 60. 
 
 To draw tJie Face-mould for the Twist of the /Scroll. 
 
 Fig. 1. Draw a sufficient number of ordinates through the plan, and from the points 
 1', 2', 3', &c., draw ordinates at right-angles to the line 1' E, and transfer the distances 1 1, 
 2 2, 3 3, &c., upon these hues, and trace the face-mould through the points. 
 
 The plumb-bevel is shown at i). B E V is the pitch-board. 
 
 To draw the Plan of the curtail Riser. 
 
 Fig. 2. When the scroll is drawn, set the projection of the noseing without, and draw it 
 equally distant from it, which will give the form of the curtail step ; then set the distance 
 which the riser is back from the line of noseings, and you will get the form of the curtail 
 riser. This figure is drawn to a smaller scale. 
 
16 HAND-RAILING, 
 
 PLATE 61. 
 
 The methods for obtaining the moulds of hand-railing, exhibited in the two following 
 Plates, have never heretofore been published. They are founded on mathematical principles, 
 and will be found to produce extremely accurate results. The lines are more simple, and 
 much easier to draw, in practice, than those now in use ; and the few principles here deve- 
 loped may be applied to every ordinary case. — Ed. 
 
 Having given the Plan of the Railing, and the Tread and Positio?i of Steps leading to a 
 
 Landing, to find the Face-m,ould. 
 
 Fig. 1. Let AD he the plan of the rail, either turning up towards j^ or continuing 
 towards H-, draw the noseings in their proper positions ; lay down the distance D G ai D' C, 
 Fig. 2, and take the angle D C D', equal to the inclination of the railing, and draw D D' 
 perpendicular to CD'; take C A perpendicular to D C, and equal to D (7, Fig. 1. Then, 
 with CA as a semi-conjugate, and, Z) C as a semi-transverse axis, draw^ with a trammel, the 
 quarter ellipse D A ; now, with B A half the breadth of the rail, draw a small circle, tangent 
 to D D' at D' ; draw Q G', &c., parallel to D D' ; and then, with G F q>b o, semi-transverse 
 axis, and the same semi-conjugate, draw the inner edge of the mould, and it will be complete. 
 The plumb bevel is shown at ^ 
 
 To find the falling Mould. 
 
 Fig. 3. Lay down a step a.t ah c, and take c D', equal to the stretch-out of the quadrant 
 A D, Fig. 1 ; take h h, equal to the distance on the plan, from A (where the rail begins to 
 bend), to the riser of the top step, and erect h A at right-angles to ah; take D' i, equal to 
 six inches, or whatever distance you wish to elevate the rail on the landing, and draw a line 
 through i, parallel to D' c; also join ac, and continue it to meet the other line at d; take 
 s E and i D, each equal to the thickness of the rail, and draw Ef parallel to sd; now from 
 A, trace any curve around to D (the arc of a circle is perhaps the best and easiest), and from 
 A' draw one parallel to this, and the falling mould is complete. The point A is applied to 
 A, Fig. 2, and the falling mould is bent around the piece, until the point D falls immediately 
 beneath D, Fig. 2. 
 
 To find the Thickness of the Stuff. 
 
 Fig. 3. Draw A' I parallel to c D', and take A' n equal to A G, Fig. 1 ; erect nf per- 
 pendicular to A' I, and from e let fall e g, perpendicular tofe; then will e g he the thickness 
 of the stuff required to produce the rail. 
 
 Remark. — It will be observed that any length of straight rail may be formed in connec- 
 tion with this piece ; and by using sufficiently thick plank, the rail may be formed without 
 any joint whatever, except at D, Fig. 1. If a butt-joint is made oi E, Fig. 3, the length of 
 the stuff required is equal to E f. 
 
HAND-RAILING. 77 
 
 PLATE 62. 
 
 To find the Face-mould for the Railing of a Stairway having a semicircular Well, and Steps 
 
 of equal Tread throughout. 
 
 Fig. 1. The plan of the rail and stairs is here exhibited. The steps do not wind, but 
 go up to a lauding ; and the rail continues an even ascent without any horizontal part, as in 
 the last case. 
 
 Fig. 2 exhibits the face-mould. Take Gh, equal to E F, Fig. 1, the difference between 
 the radius .(7 -B, of the well, and the stretch-out of B Q; make the angle Cha equal to the 
 pitch of the stairs, and draw a Cat right-angles to Ch; extend a C, making Cc equal to the 
 radius B C of the well; join c and h; from C\et fall a perpendicular upon he, and extend it 
 beyond T; perpendicular to this, draw CF, and take Ca' equal to (7a; through a', from 0, 
 draw S, equal to B C, Fig. 1, and at S erect the perpendicular S T; now, with as a 
 centre, and half the breadth of the rail as a radius, describe a small circle, and draw the 
 tangents m and n to the points where S Q intersects the circumference ; then take the dis- 
 tance O T, and set it from C to F; extend the dividers from to F; then place one leg at 
 m, and mark m', and with one leg at n, mark n' ; around F describe a circle to the breadth 
 of the rail ; now F G and F G, which equals B G, Fig. 1, are trammel lines. Describe the 
 quarter ellipse i'^ (7^, and it will be the central line of the face-mould. Describe from ??i' 
 and n' the edges of the mould, tangent to the circle at F. 
 
 It now remains to find the butt-joints. Make Go equal to Oa', and through o draw 
 B y parallel to 6 c ; draw Be and & ' 6 at right-angles to h c, and through h' and G draw a line 
 cutting the mould in L D; this will be the upper butt. Also draw a line through G and B, 
 and from A draw downwards the outer edge of the mould parallel to G L, and make the inner 
 edge parallel to this ; now, through L, draw a line (not represented on the Plate) parallel to 
 F, cutting the mould at K, and the lower butt joint may be made at K, or any point above. 
 The mould is now complete. To use it, the points L and /iTmust be fixed to the edge of the 
 plank, and the mould marked ; then place the plumb bevel, shown at T, on the edge of the 
 plank at L, and it will give the point on the other side to which L must be affixed. 
 
 No falling mould is requisite. A straight-edge bent around the piece, when cut from 
 the board by the face-mould, gives the correct lines for dressing off the upper and lower sides 
 of the rail. 
 
 PtEMARK. — This case is also applicable to a winding stairway. Instead of taking F F, 
 Fig. 1, equal to Gh, Fig. 2, take the sum of the heights of the risers between B and G, Fig. 
 1, and having added five inches, lay down this length from A to B, Fig. 3 ; then make the 
 angle A Coequal to the inclination of the rail [AB (7 being a righl>angle), and take B F, 
 equal to B G, Fig. 1, and erect F F perpendicular to B G; now use the right-angle triangle 
 F F G, Fig. 3, in the place of Gah, Fig. 2, and it will give the face-mould for the rail of the 
 winding stairs. In this case, however, falling moulds will be necessary. They may be found 
 in the way indicated upon Plate 57. 
 
78 HAND-RAILING. 
 
 PLATE 63. 
 
 To draw the Form of a Hand-i^ail. 
 
 Fig. 1, Make an equilateral triangle, vw t, upon the width of the rail, and divide it 
 into five equal parts, and from one part on each side draw z s and y u ; then t, g, and m, are 
 the centres, I m being made equal to I g. The centres are found the same for the other side. 
 
 The Form of a Rail being given, to draw the Mitre-cap. 
 
 Fig. 1. Let the projection of the cap be three inches and a half, and make the distance 
 of the inside circle from the outside circle, equal to the projection of the nose on each side 
 of the rail, and draw the mitre n o and oi' o ; then continue parallel lines down to the mitre 
 n' o, put the foot of your compass in the centre of the cap, and circle the parallel lines round 
 to a', c', e', g', and %', and draw the ordinates a' h', c' d', e' f, &c., and then mark out the 
 cap for the rail according to the letters. 
 
 To draxo the Form of the Gap ; the Mitre to come to the Centre. 
 
 Fig. 2. In every case draw the lines which are perpendicular to the diameter of the 
 rail, to the mitre ; and then, with the apex of the mitre, as a', for a centre, describe the arcs 
 around to the diameter of the cap ; then make a' h', c' d', e' f, &c., respectively, equal to a h, 
 cd, ef &c., and it will give the form of the cap. 
 
IMalo ti3 
 
Plate 64 
 
 Outside tailing Mould 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 z 
 
 
 
 1 
 
 
 
 
 
 
 
 '■ 
 
 
 
 
 
 
 
 
 
 
 
 3 
 
 
 
 
 
 -7 
 
 Fig. 2. 
 
HAND-RAILING. 79 
 
 PLATE 64. 
 
 To draw iJie /Scroll of a Hand-rail. 
 
 Fig. 1. Make a circle with the centre c, three inches and a half in diameter, and divide 
 the diameter into three equal parts ; make a square about the centre of the circle, whose 
 sides are equal to one of these parts, and divide each of its sides into six equal parts. The 
 square must then be divided by lines, as shown, full size, at Fig. 2. Now, with the points 
 1, 2, 3, 4, 5, 6, as successive centres, describe first the arc from i to 7c, Fig. 1, then from h to 
 b', from b' to m, and so on around to a. This will give the outside spiral. Set the width of 
 the rail from a to/, and go the reverse way for the inside spiral. This will complete the 
 scroll. 
 
 To draw the curtail Step. 
 
 Fig. 1. Set the ballusters in their proper places on each quarter of the scroll; the first 
 balluster shows the return of the noseing round the step, the second balluster is placed at the 
 beginning of the twist, and the third balluster a quarter distant, and straight with the front 
 of the last riser; then set the projection of your noseing without, and draw it all round 
 equally distant from the scroll, which will give the form of the curtail step. 
 
 To find the falling Mould. 
 
 Fig. 3. Ata&c is the pitch-board; the height is divided into six parts, to give the 
 level of the scroll ; the distance a d is from the face of the riser to the beginning of the 
 twist ; and the distance from d to h is the stretch-out from a, the beginning of the twist 
 round to b, Fig. 1 ; divide the level of the scroll, and the rake of the pitch-board, into a like 
 number of parts, and complete the top edge of the mould by intersecting lines, and the under 
 edge parallel to it to the depth of the rail. 
 
 The outside falling mould, Fig. 4, is found in like manner. 
 
 The method for obtaining the thickness of the stuff requisite for cutting the scroll is 
 also shown at Fig. 3. 
 
80 HAND-RAILING, 
 
 PLATE 65. 
 
 As the method of getting a scroll out of a solid piece of wood, having the grain of the 
 wood to run in the same direction with the rail, is far preferable to any of the other methods 
 with joints in them, being much stronger than any other scroll with one or two joints, and 
 much more beautiful when executed, as no joint can be seen, and consequently no difference 
 in the grain of the wood at the same place ; I shall here give a specimen, the method for 
 describing a scroll being already given in the last Plate ; and likewise the falling mould. 
 
 How to find the Face-mould. 
 
 Fig. 1. Place your pitch-board, a' h' c', as in the last Plate; then draw ordinates across 
 the scroll at discretion, and take the length of the line d h', Avith its divisions on the longest 
 side of the pitch-board, and lay it on d' V in Fig. 2 ; then, the perpendiculars being drawn, it 
 may be traced from Fig. 1, as the letters direct. 
 
 How to find the Thichness of the- Stuff. 
 
 Fig. 3. Let a 6 c' be the pitch-board, and let the level of the scroll rise one-sixth, as in 
 the la^t Plate ; and from the end of the pitch-board, at h, set from h to d half the thickness 
 of the balluster, to the inside ; then set from d to e half the width of the rail, and draw the 
 form of the rail on the end at e, the point h being where the front of the riser comes, then 
 the point e will be the projection of the rail before it ; then draw a dotted line to touch the 
 nose of the scroll, parallel with d h, the longest side of the pitch-board ; then will the distance 
 between m and n be the thickness required. Much lighter stuff may be used, by gluing a 
 piece on the under side, as shown at m. 
 
 Figs. 4, 5, and 6, show the plan, face-mould, and thickness, of another scroll, of a diffe- 
 rent pattern. The principles of the drawing are the same as in the other case. 
 
Tlate 65 
 
 Fic^.4. 
 
 Fia . 1 
 
 Fig . S . 
 
 'W h 
 
Plate 66 
 
HAND-RAILING. 81 
 
 PLATE 6^. 
 
 Fig. 1. Part of the plan of the rail for a stair, consisting of eight winders round the 
 semicircular part, and flyers below and above. 
 
 Fig. 2. The elevation of the convex side of the semicylinder, showing the winders. 
 
 Fig. 3. The elevation of the concave side, with the delineation of the winders, drawn 
 from the equal parts on the concave side of the plan. 
 
 Fig. 4. The steps stretched out for the semicircumference of the convex side of the 
 rail ; A B c being the triangle of the winders, and A d e and CFG flyers, one below and the 
 other above tlie winders in position. 
 
 To draw the falling Mould. 
 
 Produce d a and b c upwards to h and o ; make A h and c o of any equal heights ; join 
 H o. Draw h k parallel to A e, and o n parallel to G c ; therefore n o and h k will be parallel 
 to each other. Make on and o m, also hl and hk, equal to Ae or G c, and describe two 
 tanged curves, N i M and k u l, and k u l m i n will be the under side of the falling mould ; 
 then, the upper curve p Q e s t being drawn parallel to a given distance, will complete the 
 falling mould. Ordinarily, the distance between the under and upper edges of the falling 
 mould, is two inches; the breadth of the rail, two and a quarter, or three inches. Much in 
 the same manner most falling moulds are to be formed ; viz., by placing a flyer before and 
 after the winders. In semicircular rails upon level landings and half spaces, the winders are 
 reduced to a single step with a broad tread equal to the circumference of the rail, and the 
 height the common height of the flyers : also in quarter spaces, the quadrantal periphery of 
 the rail is considered as the tread of a step, in addition to the other winders, which are 
 necessary in the other quarter. 
 
 Fig. 5. A B is the pitch of the steps or falling mould for the concave side of the rail, 
 c D the pitch of the steps or of the falling mould for the convex side of the rail ; let these 
 two pitches intersect one another in e, in the middle of A B : it must be obvious that neither 
 of these positions gives the true pitch of the rail piece. If the rail were considered in depth 
 only, without thickness, then the middle part of the cylindric projection, as shown in the 
 elevation. Fig. 2, would give the pitch, provided the radius of the rail were the same as the 
 outside of the plan. Therefore, neither the outside nor inside falling moulds, nor the eleva- 
 tions of the concave or convex projections of the rail, will give its pitch ; but from what has 
 now been shown of the projections of the cylinder, it will be no difiicult matter to form an 
 idea of the complete projection of a rail piece, showing the entire solid in order to form the 
 true pitch. This will be described in the next Plate. 
 
 Fig. 6, the pitch-board of the flyers. Fig. 7, the pitch-board of the winders. 
 11 
 
82 HAND-RAILING. 
 
 PLATE 67. 
 
 To show the proper Tioist of a Rail and Thickness of Stuff, and the Face-moulds. 
 
 Fig. 1. Let A be the plan of a rail, and Fig. 2 the falling mould, as completed. Let 
 the plan of the rail be so placed that the chord A o be parallel to the base m o of the falling 
 mould, Fig. 2, and let b b' be the separation of the straight and circular parts of the rail, o b, 
 b' o' being the quadrantal part of the rail, and b' a.', a b the straight part ; divide the concave 
 side B c D 0, of the quadrantal part, into equal parts at the points b, c, d, and o; through all 
 the points b, c, d, &c., draw lines at right-angles to the chord A o, cutting it in 1, 2, 3, &c., 
 and produce them upwards to the points/^ A, &c. Let m b n. Fig. 2, be the section of a step, 
 and upon m o, make b a equal to b a. Fig. 1. Extend the parts A b, b c, c d, &c., upon the 
 base M 0, Fig. 2, from a to b, from b to c, from c to d, &c. ; from the points A, b, c, d, &c., 
 draw lines perpendicular to m o, cutting the lower edge of the falling mould at e, f, g, h, &c., 
 and the upper edge at i, J, k, l, &c. In Fig. 1, draw any line, abed, &c., parallel to the 
 chord A o ; make a e, b f, c g, d h, &c., respectively equal to A E, b r, c G, D h, &c., Fig. 2 ; also 
 in Fig. 1, make a i, b j, c h, d I, &c., equal to A i, b j, c k, d l, &c.. Fig. 2. Through the 
 points e, f, g, h, &c., Fig. 1, draw a curve ; also through the points i,j, Ic, I, &c., draw another 
 curve, and these two curves will complete the projection of the falling mould. From the 
 point s, Fig. 1, radiate the lines c c', d d', &c., cutting the convex side at c' d', &c. ; from the 
 points A', b', c', b', &c., draw the lines A' i', B'f, c' Jc',!)' h', &c. ; draw e e', i i', j j', h k', h h', 
 &c., parallel to the chord A o. Through the points %', j', k' , &c., draw a curve until it inter- 
 sects with the curve %, j, k, &c. ; this will form the projection of the top of the rail piece. In 
 like manner the under parts which appear aiqq', hh', will be completed in the same manner, 
 so that B is the whole appearance of the solid, qr' rq' and ii' ee' being sections, or the ends 
 which join the contiguous parts of the rail. 
 
 To trace the face-mould at C; join i' r', and let the perpendiculars cut i r at 1, 2, 3, &c. 
 Draw the ordinates lb u, 2 cv, 8 d w, &c., perpendicular to ^' r' ; make lb, 2 c, S d, &c., equal 
 to 1 B, 2 c, 3 D, &c., at A ; also, at G, make 1 u, 2v,Sw, &c., equal to 1 u, &c. ; also make x o 
 equal to x o', i a' equal to i A' ; draw b y parallel to t a', and a y parallel to t b, and ta' yb 
 will complete the straight part of the face-mould: join r' o; draw the concave curve 
 bedr, and the convex curve y uvwo, which completes the curve part, and the whole of the 
 face-mould. - , 
 
 Fig. 3 shows the projection and face-mould for the quadrantal part of a rail. The 
 principles of projection, and manner of drawing the face-mould, is the same as what has now 
 been shown. The figure is introduced to show how much less wood the part of the rail 
 requires from a quadrantal plan, than when a straight part of the rail is taken in ; and the ' 
 more of the straight rail that is taken in, the greater will be the deflection from the chord; 
 thus, in Fig. 3, the distance between the chord y r, at any point to the nearest point of the 
 projection, is much less than the distance. Fig. 1, from a corresponding point in i' r to the 
 nearest point of the projection. 
 
Pla.te 67 
 
 J^-.- 1 
 
 K,-' 
 
 Fig. 2. 
 
 '■-. S 
 
 ^ 
 
Plate 68 
 
 
HAND-RAILING. 83 
 
 PLATE 68. 
 
 To find the Moulds for executing a Rail with a Semicircle of Winders, 
 
 Fig. 1. The falling mould as here drawn does not follow the line of noseings, but is 
 raised six inches, as is the practice with several hand-railers, in order that the rail should not 
 approach nearer to the noseings of the winders than to the flyers. This example is adapted 
 to a stair with ten winders in the semicircumference. 
 
 Fig. 2. The plan and face-mould of the lower quarter winders. 
 
 Fig. 3. The plan and face-mould of the upper quarter winders. A b c the convex side 
 of the quadrantal part of the plan, c d a straight part intended to be wrought on the same 
 piece with the twisted part. In this method, the plane of the top of the face-mould is sup- 
 posed to rest upon the upper extremities of three straight lines or slender rods perpendicular 
 to the plane of the seat of the said face, and these three perpendicular lines to rise from three 
 points, in a line dividing the breadth of the plan everywhere into two equal parts of the rail 
 piece ; and these three points to be so situated that one may be at each extremity, one at the 
 end of the quadrant, and one at the end of the straight piece, and the intermediate point at 
 the intersection of a perpendicular, drawn from the centre of the plan of the rail piece to a 
 straight line joining the two extreme points. Let each of the upper extremities of the three 
 perpendicular lines be called resting-points, and let the feet of the perpendiculars be called 
 the foot of the heights of the rail piece, which will therefore be the same as the seats of the 
 resting-points ; and let the three perpendicular lines themselves be called the heights of the 
 rail piece, and their places distinguished by the lower height, the middle height, and the 
 upper height. 
 
 Let a. Fig. 2, be the foot of the upper height, h the foot of the middle height, and d the 
 foot of the lower height; join ad; draw a/, h' g, and dh, perpendicular io ad; the middle 
 one, h g, being drawn from the centre e. Let A, b, g, d, Fig. 1, be the points corresponding 
 to A, B, c, D, in the convex side of the plan, Fig. 2, and let A f, b g, and d h, be the heights 
 of the rail piece. Fig. 1 ; make a /, 5' g, d h, Fig. 2, respectively equal to A f, b G, d h, Fig. 1 : 
 join/ A, Fig. 2 : draw g i parallel to b d, cutting /A at i; draw i h parallel to g h, cutting h d 
 at h : draw glm perpendicular to / A, cutting fh ail; join b h ; from *', with the distance 6 Ic, 
 describe an arc at m ; join i m : draw d' p parallel to d a from the extremity d of the concave 
 side ; produce the convex quadrant c b A to Q, and the concave quadrant c' b' a to p, and 
 radiate the line p Q from the centre e, which will complete the whole plan of the rail piece ; 
 the part ? A' A Q will make a sufficient allowance for the cutting of the joint. Draw ordinates 
 parallel to b Jc, cutting the chord d' p, the concave side of the plan, and the convex side of the 
 same : produce b k to meet d' p in t, and produce m i to u, making i u equal to k t: through 
 
84 HAND-RAILING. 
 
 M draw V to parallel to / 7i ; from the points where the ordinates intersect d' p, draw lines 
 parallel to a f,h g, or d h, cutting v w : from the cutting points in v w, draw lines parallel to 
 u m as ordinates : transfer the interior ordinates from the plan to the face-mould, also transfer 
 the exterior ordinates of the plan to the face-mould, applying them from the intersected 
 points in the chord v w, and through the points thus set off, trace the concave and convex 
 curves, as also the straight part of the mould ; observe, however, that as the straight part of 
 the mould is a parallelogram, if three points on two contiguous sides are found, joining the 
 middle point to each of the other two, gives two sides ; each of the other two remaining sides 
 is found by drawing a line parallel to its opposite side. 
 
 In the same manner, the mould. Fig. 3, is to be found ; but the base line of the heights 
 is taken upon any convenient line, s r, parallel to A d. Fig. 1, so as to shorten the height 
 lines, as otherwise Fig. 3 would occupy more space than might be found at all times con- 
 venient ; and at any rate, the shortening of the heights will shorten the time of drawing 
 Fig. 3, as shorter lines can be drawn sooner than longer ones. The distance between the 
 height lines of the upper rail piece is the same as those for the under rail piece. 
 
 To find the spring of the plank. Fig. 4. Draw any straight line, ab; from which cut 
 off B d, equal to g I, Fig. 2 ; draw d c. Fig. 4, perpendicular to A b : make d c equal to h h', Fig. 
 2, and join b c, Fig. 4 ; then the angle A b c is denominated the spring of the plank, and the 
 angle is said to be acute, when the planes of the top and edge of the plank, form an acute 
 angle with each other; but when these two form an obtuse angle with each other, the spring 
 is said to be obtuse. 
 
 To fiind the Spring of the Plane at an obtuse Angle. 
 
 In Fig. 5, let A b be any straight line, which produce to d : make b d equal to b cZ, Fig. 
 3 ; in Fig. 5, draw d c perpendicular to A b : make d c equal to a e, Fig. 3 ; then A b c will be 
 the spring of the plank at the obtuse angle. 
 
 Both these bevels are supposed to be applied from the top of the plank ; but if the 
 complemental angle of the obtuse spring bevel, which answers to the upper wreath piece, be 
 taken, then the lower spring is applied from the top in order to give the spring of the lower 
 wreath piece, and the complemental spring of -the upper wreathed piece to the lower edge of 
 the said piece. 
 
 The reader will perceive that in Figs. 2 and 3, though the plan is the same in both, with 
 its position inverted, the face-mould of the lower wreath piece is much longer than that 
 of the upper one. This circumstance is owing to the middle parts of the falling mould being 
 raised over the noseings of the winders ; and the more it is raised above the winders, the 
 greater will the face-mould of the lower wreathed piece exceed the length of the mould of 
 the upper wreathed piece ; and unless that (if supposing a line passing through the middle 
 of the falling mould bisecting the breadth of the same), the distance of the line thus passing 
 be the same over the winders as over the flyers, the two face-moulds can never be equal. 
 
Plate 69 
 
 
 ^qea 
 
 u^^^ 
 
 ^&^ 
 
 7 
 
 ■IP 
 
 
 
 '^1 
 
 mm 
 
 K "^' " 
 
 f 
 
 
 
 
 \ 
 
 \ 
 
HAND-RAILING. . 85 
 
 PLATE 69. 
 
 To find the Face-mould for the Rail of a Stair-case having a Landing, so that, when set to its 
 yroper Rake, it loill stand directly ewer the given Plan. 
 
 Fig. 1. Draw the central line h q parallel to the sides of the rail; on the right line h q 
 apply the pitch-board qca-, from q to a, draw ordinates n d', me, If, hg, and ih, at discre- 
 tion, taking care that one of the lines, as h g, touch the inside of the rail at the point g, so 
 that you may obtain the same point exactly in the face-mould ; then take the parts qu, uv, 
 vw, wx, xy, and apply them at Fig. 2, from q u, uv, vw, wx, xy; from these points draw 
 perpendiculars to q y, and mark their lengths from the plan, Fig. 1 ; then Fig. 2 will be the 
 mould required. 
 
 To find the falling Moidd. 
 
 Divide the radius of the circle, Fig. 1, into four equal parts, and set three of these parts 
 from 4 to & ; through n and v, the extremities of the diameter of the rail, draw h n and h v, 
 to cut the tangent line at the points o and d ; then will o dhe the circumference of the rail, 
 which is applied from c to d, at Fig. 3, as a base-line : make ce the height of a step; draw 
 the hypothenuse e d; at the points e and d, apply the pitch-board of a common step at each 
 end of their bases, parallel to cd; make cZ/ equal to d g, if it will admit of it, and by these 
 lengths curve off the angles by the common method of intersecting lines ; then draw a line 
 parallel to it, for the upper edge of the mould. 
 
86 HAND-RAILING. 
 
 PLATE 70. 
 
 To draw a falling Mould for a Bail having Winders all round the circular Part ; thence to find 
 
 the Face-mould. 
 
 To describe every particular in this, would almost be repeating what has been already 
 described. The heights are marked the same upon the falling mould, Fig. 2, as they are at 
 the face-mould, which will give the heights of the sections of the rail ; and the face-mould, 
 Fig. 1, is traced from the plan according to the letters. Fig. 3 shows the application of the 
 mould to the plank ; take the bevel at h. Fig. 1, and apply it to the edge of the plank at 
 Fig. 3, and draw the line b c ; then apply your mould to the top of the plank, keeping one 
 corner of it to the point h, and the other corner close to the same edge of the plank; then 
 draw the top face of the plank by your mould ; then take your mould, and apply it to the 
 under side at c, in the same manner. 
 
Hate 71 
 
 A/ 
 
 I - 
 
 7c' 
 
 .-iiiiiliiiiiiiiiiiiiiiiiiv 
 
HAND-RAILING. 87 
 
 PLATE 71. 
 
 To form the Line of Noseings of the Stejps of a semicircular Winding Stair-case, into a regular 
 Curve of contrary Flexure ; thence to find the Plan of the Steps, the Form of the String, 
 and the Rail stretched out. 
 
 Let ABODE, Fig. 1, be a part of the rail, b c d the semicircular part, A b and d e straight 
 parts, each equal to the breadth of a flyer -, let A i be the seat of the last riser. Draw b f 
 parallel to A i, and make b f equal to 18 inches; describe a semicircumference f g h : divide 
 the breadth of the semicircumference into equal chords, each equal to the breadth of a step, 
 or as nearly equal to the breadth of a step as a semicircular arc will divide. The number 
 thus contained in this example is nine : produce A b to n ; make b n equal to half the stretch- 
 out of the semicircular convexity b c d of the rail. Draw N o perpendicular to b n ; make n o 
 equal to half the number of steps in the semicircumference, which are here 4^ : draw al 
 parallel to A n, make b k equal to the height of a step; join A k : produce A k, cutting n o at 
 M ; bisect AM at l : join L o : make L t equal to L A ; describe an arc to tange the straight 
 lines L A and L i!, at A and t : parallel to N A, draw 1 a, 2 6, 3 c, 4 c?, 5 e, cutting the curve at 
 ah c; draw af,hg,c h, d i, e Ic, cutting AN at /, g, h, i, h ; transfer the distances fg, gh,h i, 
 i Tc, h N, to the arc b c d, from b to I, from I to m, from on to n, from n to o, from o to C; make 
 cp, cq, c r, &c., equal to c o, c ?i, c m, &c., and through the points F, 1, 2, 3, &c./ draw.,/ v, 
 g p, m Q, 01 E, &c., which will represent the winders ; then Aa h c d e o is half the line of 
 noseings, which may be transferred to Fig. 2, at Aahcdef &c. ; thence the form of the 
 steps and string are drawn. The under edge of the falling mould, Fig. 3, is also of the same 
 form, and the upper edge is drawn parallel to the under edge. 
 
 This formation of the string-board is certainly a very great improvement in stair-casing, 
 as it gives one universal curvature to the soffit ; that is, without any breaking of surface so 
 as to form an angle, as is the case with all stair-cases with winders when the ends of the 
 steps at the rail are equal, and where the breadths of the threads next to the rail differ from 
 the flyers. The angle at the junction of the flyers and winders increases as this difference is 
 greater. 
 
88 HAND-RAILING. 
 
 PLATE 72. 
 
 Plan and Elevation of an elliptical Stair-case. 
 
 In every kind of stair-ease whatever, the breadths of the heads of the steps are always 
 reckoned on a line, bisecting their length, or at 18 inches distant from the rail. In this 
 example, the steps are divided into equal parts, both at the rail and at the wall. This divi- 
 sion will make the falling mould straight on the edges, and consequently will form an easy 
 skirting as well as an easy rail. 
 
Plate 72 
 
HAND-RAILING. 89 
 
 PLATE 73. 
 
 To draw the Face-moulds for the Railing of an elliptic Stair-case. 
 
 The plan and section being laid down as in the preceding plates, it will be observed that 
 the ends of the steps are equally divided at each end; that is, they are equally divided round 
 the elliptic wall, and also at the rail. In this Plate, the rail is laid down to a larger size than 
 that in the last Plate ; the plan of this rail must be divided round, into as many equal parts 
 as there are steps ; then take the treads of as many steps as you please, suppose 8, and let 
 h h, at Fig. 1, be the tread of eight steps ; on the perpendicular h m set up the height of as 
 many steps, that is, 8 ; and draw the hypothenuse m h, which will give the under edge of 
 the falling mould. The reader will observe that this falling mould will be a straight line, 
 excepting a little turn at the landing and at the scroll, where the rail must have a little bend 
 at these places, in order to bring it level to the landing, and to the scroll ; then mark the 
 plan of your rail in as many places as you would have pieces in your rail (in this plan are 
 three) ; then draw a chord line for each piece to the joints ; also draw lines parallel to the 
 chords, to touch the convex side of the plan of the rail ; from every joint draw perpendicu- 
 lars to their respective chords. Now the tread of the middle piece at c being just 8 steps, 
 the height of the section from h to m is 8 steps ; and the section mn is the same as mn on 
 the falling mould, and the section 7i i is the same height as h i upon the falling mould ; draw 
 a line to touch the sections, and complete your face-mould as in the foregoing plates : in each 
 of the other pieces at e and G, the number of treads being 6 ; therefore, from your falling 
 mould set the stretch of six steps, from 7i to 7i'. Draw h' I parallel to 7i n, then h' kl will 
 give the height of the sections at D and e : everything else agreeably to the letters. 
 
 The stretch-out of 8 steps, or any other number, is not reckoned on the chord ; but it is 
 the stretch-out round the convex side of the rail, or what most people call the inside. 
 
 12 
 
90 HAND-RAILING. 
 
 PLATE 74. 
 
 How to diminish the Shaft of a Column hy the ancient Method. 
 
 Fig. 1. Describe a semicircle at the bottom; let a line be drawn through the diameter 
 at the top, parallel with the axis of the column, till it intersects the semicircle at 1, at the 
 bottom; then 1, 1 at the bottom will be equal to 1, 1 at the top; divide the arch into four 
 equal parts, and through these points draw lines parallel to the base, the height of the column 
 being also divided into the same number of parts, and lines drawn parallel to the base, then 
 the column is to be traced from the semicircle, according to the figures. 
 
 How to describe the Column hy another Method. . 
 
 Fig. 2. Take the semi-diameter a 6 at bottom, and set the foot of your compass in the 
 top at c, and cross the axis at 8, and draw the line a 8 on the outside, parallel to 5 8 on the 
 axis, and divide each of these lines into eight equal parts, and set the diameter a 6 at the 
 bottom, along the slant lines 1 1, 2 2, 3 3, &c., from the axis ; this will give the diminishing 
 of the column. 
 
 How to diminisJi tJie Column hy Lines drawn from a Centre at a Distance. 
 
 Fig. 3. Take the semi-diameter a 5 at the bottom, set the foot of your compass in c at 
 
 the top, and cross the axis in the point d; continue c d a,t the top, and ah at the bottom, to 
 
 meet at e ; then draw from e as many lines across the column as you please, and take the 
 
 diameter ah sd, the bottom, and prick each line upon the axis equal to ha, which will give 
 
 the swell of the column. 
 
 * 
 To diminish a Column hy Laths, upon the same Principle. 
 
 Fig. 4. The point e being found, as in Fig. 3, groove a rod d h, and lay the groove upon 
 the axis of the column, and groove the describing rod upon the under side, and lay the groove 
 upon a pin fixed at e ; then fix a pin at g, to run in the groove upon the axis of the column, 
 and the distance of the pencil at/, equal to h a, then move the pencil at/, it will describe the 
 curve. 
 
 How to malce a diminishing Rule. 
 
 Fig. 5. Divide the height of your rule into any number of equal parts, as 6 ; draw lines 
 at right-angles from these points across the rule, and divide the projection of the rule at the 
 top, that is, half of what the column diminishes, into the same number of equal parts. Put 
 a pin or brad-awl at a ; lay a ruler from a to 5, mark the cross line at /; then lay a ruler 
 from 4 to a, and mark the next cross line at e ; then lay the ruler from 3 to a, mark the next 
 at d, and so on to the bottom ; bend a slip round these points, and draw the curve by it, and 
 it will give a proper curve for the side of the column. 
 
 This is the readiest method, and gives the best curve of any that I have tried. 
 
Plate 7 1 
 
 Fi^ Z. 
 
 "^^ ; .-■■ 
 
 
 
 
 
 \ 
 
 
 \l 
 
 i \ 
 
 
 
 
 
 
 7' 
 
 
 «|- 
 
 
 6' 
 
 -;>; 
 
 s'\ 
 
 
 
 
 
 5' 
 
 
 
 
 
 
 3 
 
 4 
 
 
 
 3 
 
 
 
 i 
 
 
 1 
 
 
 1 
 
 r""" 
 
 
 
 h 
 
 
SASn-WORK. 9] 
 
 PLATE 75. 
 
 The Plan ami Elevation of a circtilar SasJi, in a cio-cular Wall, being given, to find the Mould 
 for the radial Bars, so that they shall he perjpetidicular to the Plan. 
 
 Fig. 1. Draw perpendiculars from the points 1, 1, 1, 1, &c., at A and b, in the radial 
 bars, either equally divided, or taken at discretion, down upon the plan to 1, 2, 3, 4, 5, 6, 7, 
 at c and d ; and draw a line from the first division upon the convex side parallel to the base ; 
 then draw ordinates from 1, 1, 1, 1, &c., at right-angles to the radial bars, at A and b, which 
 being pricked from the plans at D and c, will give a mould for each bar; and the bevels upon 
 the end will show the application of the moulds. 
 
 To find the Veneer of the Arch-har. 
 
 Fig. 2, To avoid confusion, I have laid down the plan and elevation for the head of the 
 sash below. The stretch-out of the veneer is got round, 1, 2, 3, 4, 5, 6, on the arch-bar, 
 which, being pricked from the small distance on the plan at m, will give the veneer above, at e. 
 
 To find the Face-mould for the Sash-head. 
 
 Fig. 2, Divide the sash-head round into any number of equal parts, at G, and draw 
 them perpendicular to the base at h ; draw the chord of one-half of the plan at h, and draw 
 a line parallel to it to touch the plan upon the back side ; then the distance between these 
 lines at H, will show what thickness of stuff the head is to be made out of; and from the 
 intersecting points on the back side, draw perpendiculars from the base of the face-mould, 
 which, being pricked from the elevation, as the figures direct, will give the face-mould. 
 
 To find the Moulds for giving the Form of tlie Head, perpendicular to the Plan. 
 
 Fig. 3. The base of l is got round the arch 1 2 3 4 5 6, at f, Fig. 2, and the base of k 
 is got round ahcdefg, also at f, and the heights of the ordinates of each are pricked either 
 from H or i, which will give both moulds. 
 
 Note. — The face-mould at g, Fig. 2, must be applied in the same manner as in groins; so that the sash-head must 
 be bevelled by shifting the mould o, on each side, before you can apply the moulds K and L, Fig. 3 ; the black lines at 
 K and L arc pricked from the plan, at H ; these black lines will exactly coincide with the front of the rib when bent 
 round ; a line being drawn by the other edge of the moulds, will be perpendicular over its plan, and the thickness of 
 the sash-frame towards the inside will be found near enough by guaging from the outside. 
 
92 AEOHITEAVE. 
 
 PLATE 76. 
 
 Fig. 1. The plan and elevation of an architrave or archivolt for a circular window, in 
 a circular wall. 
 
 To find the Form of the Veneer. 
 
 Fig. 2. Lay down the line 6' 6', equal to the double stretch-out of the line ahcd, &c., 
 Fig. 1 ; erect perpendiculars from the corresponding points, and by measurement we may 
 obtain the arch 5 4 3 2, &c., which is the form of the veneer. 
 
 The first veneer is to be partly cut out of the solid architrave as far as h 3 and k 3, on 
 each side, to join to the middle piece that lays between these joints; break the joint with the 
 next veneer that is between p 6' and m n, or 6' s, &c. 
 
riate 76 
 
Plate n 
 
 -fu/.J. 
 
MOULDINGS. 93 
 
 PLATE 77. 
 
 To describe tJie Angle Bars for Shop Fronts, 
 
 •Fig. 1. B is a common bar, and c is the angle bar of the same thickness; take the 
 raking projection 1, 1, in c, and set the foot of your compass in 1 at b, and cross the middle 
 of the base at the other 1 ; then draw the lines 2, 2 ; 3, 3, &c., parallel to 1, 1 ; then prick 
 your bar at c from the ordinates so drawn at b, which being traced will give the angle bar. 
 
 To draw the Mitre Angle of a Commode Front for a /SIiop. 
 
 Fig. 2. Divide the projection each way in a like number of equal parts; then the 
 parallel hues continued each way will give the mitre. 
 
 To find the Making Mouldings of a Pediment. 
 
 Fig. 4. Let the simarecta on the under side be the given moulding, and let lines be 
 drawn upon the rake at discretion ; but if you please, let them be equally divided upon the 
 simarecta, and drawn parallel to the rake ; then the mould at the middle being pricked off 
 from these level lines at the bottom, will give the form of the face. The return moulding at 
 the top must be pricked upon the rake, according to the letters. 
 
 The cavetto, Fig. 3, is drawn in the same manner. 
 
 N, B. If the middle moulding. Fig. 4, be given, perpendiculars must be drawn to the 
 top of it ; then horizontal lines must be drawn over the mouldings at each end, with the 
 same divisions as are over the mouldings ; and lines being drawn perpendicularly down, as 
 above, will show how to trace the end mouldings. 
 
94 MOULDINGS. 
 
 PLATE 78. 
 
 Raking Mouldings, and Mouldi7igs of different Projections. • 
 
 Figures 1 and 2 show how to trace base mouldings for skirting to stairs, upon the same 
 principles as shown in the last Plate; at the bottom are given two methods of mitring 
 mouldings of different projections together. 
 
Plate 78 
 
Plate 79 
 
 Fifi .2. 
 
 Fif) .2. 
 
MOULDINGS. 95 
 
 PLATE 79. 
 
 Given tlie Form of a Cornice, to draw it to a greater Proportion. 
 
 Fig. 1. Let the gh-en height of the cornice he ad; set one foot of your compass in a, 
 and cross the under side at h with that height, and from the point c draw the line c c? at 
 right-angles to a & ; then the height of all your mouldings will be the parts of a h, and the 
 projections the parts of c c? in proportion. 
 
 Note. — a /shows another height; c e its projection in proportion to that height. 
 
 To diminish a Cornice in the Pi'ojportion of a greater. 
 
 Fig. 2. Describe equilateral triangles on the base and projection, as at A, and make if 
 and ig equal to the intended height, and draw the \mefg across the triangle, which will 
 give the heights in proportion to a 6 ; put the foot of your compass in 6 as a centre, and 
 circle h c round h h, and draw the dotted line h i, cutting f g in Jc; then set oS ie and i d, 
 each equal to glc; draw d e ; then take the divisions of e d, and set them from / to m ; in 
 the same order draw perpendiculars : it will give the diminished cornice at A. 
 
 To do this by another method, as shown at b, let the given height be a h, and draw the 
 hypothenuse ag, and lines being squared up to ah, from the divisions of ag, will give the 
 heights ; and if you draw the line ^ c^ at a right-angle with a g, then d c will give the projec- 
 tion in proportion, when returning upon d c. 
 
96 MOULDINGS. 
 
 PLATE 80. 
 
 MOULDINGS UPON THE SPRING. 
 
 To find the Sweep of a Moulding to he hent upon the Spring round a circular Cylinder. 
 
 In Fig. 1, which stands upon a semicircular plan, make a c equal to the height of your 
 moulding, and make a h equal to the projection ; describe the form of the moulding, and draw 
 a dotted line to touch the face of it ; then draw the line edio meet in the centre of the body 
 at d, so as to keep your moulding to a sufficient parallel thickness ; from the centre d describe 
 the several concentric circles, which are the arrises of the moulding reauired. 
 
 To find the Sweep of the Moulding when the Plan is a Segment. 
 Fig. 2. Complete the semicircle ; then proceed as described under Fig. 1. 
 
 Figs. 3 and 4 show the method for bending a moulding round the inside, which is per- 
 formed the same as above. 
 
 The demonstration may easily be conceived from the covering of a cone. 
 
Fi^.l. 
 
 PlaU' 80 
 
 c:,:^ 
 
 Fi^.Z. 
 
 ^W4. 
 
 f-/--4-r 
 
APPENDIX. 
 
 STEENGTH OF TIMBER. 
 
 PROPOSITION I. 
 
 The strengths of the different pieces of timber, each of the same length and thickness, 
 are in proportion to the square of the depth ; but if the thickness and depth are both to be 
 considered, then the strength will be in proportion to the square of the depth, multiplied into 
 the thickness ; and if all the three dimensions are taken jointly, then the weights that will 
 break each wiU be in proportion to the square of the depth multiplied into the thickness, and 
 divided by the length ; this is proved by the doctrine of mechanics. Hence a true rule will 
 appear for proportioning the strength of timbers to one another. 
 
 RULE. 
 
 Multiply the square of the depth of each piece of timber into the thicJcness ; and each product 
 being divided by the respective lengtlis, loill give the proportional strength of each. 
 
 EXAMPLE. 
 
 Suppose three pieces of timber, of the following dimensions : 
 The first, 6 inches deep, 3 inches thick, and 12 feet long. 
 The second, 5 inches deep, 4 inches thick, and 8 feet long. 
 
 The third, 9 inches deep, 8 inches thick, and 15 feet long. The comparative weight 
 that will break each piece is required. Ans, 9, 12h, and 431. 
 
 13 (97) 
 
98 APPENDIX. 
 
 Therefore the weights that will break each are nearly in proportion to the numbers 9, 
 12, and 43, leaving out the fractions, in which you will observe, that the number 43 is almost 
 5 times the number 9 ; therefore the third piece of timber will almost bear 5 times as much 
 weight as the first ; and the second piece nearly once and a third the weight of the first 
 piece; because the number 12 is once and a third greater than the number 9. 
 
 The timber is supposed to be everywhere of the same texture, otherwise these calcula- 
 tions cannot hold true. 
 
 PROPOSITION II. 
 
 Given the length, breadth, and depth of a piece of timber ; to find the depth of another 
 piece whose length and breadth are given, so that it shall bear the same weight as the first 
 piece, or any number of times more. 
 
 RULE. 
 
 Multiply the square of the depth of the first piece into its breadth, and divide that product hy its 
 
 length : multiply the quotient hy the number of times as you would have the other piece to 
 
 carry nriore weight than the first, and multiply that hy the length of the last piece, and, divide 
 
 \ it hy its width ; oid of this last quotient extract the square root, which is the depth required. 
 
 EXAMPLE I. 
 
 Suppose a piece of timber 12 feet long, 6 inches deep, 4 inches thick ; another piece 20 
 feet long, 5 inches thick ; requireth its depth, so that it shall bear twice the weight of the 
 first piece. Ans. 9-8 inches, nearly. 
 
 EXAMPLE II. 
 
 Suppose a piece of timber 14 feet long, 8 inches deep, 3 inches thick; requireth the 
 depth of another piece 18 feet long, 4 inches thick, so that the last piece shall bear five times 
 as much weight as the first. Ans. 17-5 inches, nearly. 
 
 Note. — As the length of both pieces of timber is divisible by the number 2, therefore half the length of each is 
 used instead of the whole ; the answer will be the same. 
 
 PROPOSITION III. 
 
 Given the length, breadth, and depth, of a piece of timber; to find the breadth of ano- 
 ther piece whose length and depth is given, so that the last piece shall bear the same weight 
 as the first piece, or any number of times more. 
 
APPENDIX. 99 
 
 RULE. 
 
 Multiply the square of the depth of the first piece into its thichness ; that divided hy its length, 
 midtiply the quotient hy the number of times as you, would have the last piece hear more than 
 the first ; that being midtiplied by the length of the last piece, and divided by the square of 
 its depth, this quotient will be the breadth required. 
 
 EXAMPLE L 
 
 Given a piece of timber 12 feet long, 6 inches deep, 4 inches thick ; and another piece 
 16 feet long, 8 inclies deep; requireth the thickness, so that it shall bear twice as much 
 weight as the first piece. Ans. 6 inches. 
 
 EXAMPLE II. 
 
 Given a piece of timber 12 feet long, 5 inches deep, 3 inches thick ; and another piece 
 
 14 feet long, 6 inches deep ; requireth the thickness, so that the last piece may bear four 
 times as much weight as the first piece. Ans. 9 '722 inches. 
 
 PROPOSITION IV. 
 
 If the stress does not lie in the middle of the timber, but nearer to one end than the 
 other, the strength in the middle will be to the strength in any other part of the timber, as 1 
 divided by the square of half the length is to 1 divided by the rectangle of the two segments, 
 which are parted by the weight. 
 
 EXAMPLE I. 
 
 Suppose a piece of timber 20 feet long, the depth and width is immaterial ; suppose the 
 stress or weight to lie five feet distant from one of its ends, consequently from the other end 
 
 15 feet, then the above portion will be ^ttt — =-pr = r-p-:r : p — =-= =^wf as the strength at five 
 
 ' ^ 10 X 10 100 5 X 15 75 ° 
 
 feet from the end is to the strength at the middle, or ten feet, or as -^ = 1 : ,_^ = 1 o- 
 
 -LOU to o 
 
 Hence it appears that a piece of timber 20 feet long is one-third stronger at 5 feet 
 
 distance for the bearing, than it is in the middle, which is 10 feet, when cut in the above 
 
 proportion. 
 
 EXAMPLE II. 
 
 Suppose a piece of timber 30 feet long; let the weight be applied 4 feet distant from one 
 end, or more properly from the place where it takes its bearing, then from the other end it 
 
 LOFC. 
 
100 APPENDIX. 
 
 1 11 1 
 
 will be 26 feet, and the middle is 15 feet; then, =-p — tk — o^Tk'~a — q?~T7:j or as 
 
 io -^ 10 AZo 4 ^ Ao 11)4 
 
 225 ^ 225 „ 17 . ^ 1 
 
 Hence it appears that a piece of timber 30 feet long will bear double the weight, and 
 one-sixth more, at four feet distance from one end, than it will do in the middle, which is 15 
 feet distant. 
 
 EXAMPLE III. 
 
 Allowing that 266 pounds will break a beam 26 inches long, requireth the weight that 
 will break the same beam when it lies at 5 inches from either end ; then the distance to the 
 other end is 21 inches; 21 x 5 = 105, the half of 26 inches is 13 .-. 13 x 13 =. 169 ; there- 
 fore the strength at the middle of the piece is to the strength at 5 inches from the end, as 
 
 r-^77T : T7^ or as 1 : ^r-^^ the proportion is stated thus : 1 : z^^ : : 2bo : 428 +, A7is. 
 lt)9 105 105 ^ ^ 105 ' 
 
 From this calculation it appears, that rather more than 428 pounds will break the beam 
 
 at 5 inches distance from one of its ends, if 266 pounds will break the same beam in the 
 
 middle. 
 
 By similar propositions the scantlings of any timber may be computed, so that they shall 
 sustain any given weight; for if the weight one piece will sustain be known, with its dimen- 
 sions, the weight that another piece will sustain, of any given dimensions, may also be 
 computed. The reader must observe, that although the foregoing rules are mathematically 
 true, yet it is impossible to account for knots, cross-grained wood, &c., such pieces being not 
 so strong as those which are straight in the grain; and if care is not taken in choosing the 
 timber for a building, so that the grain of the timbers run nearly equal to one another, all 
 rules which can be laid down will be baffled, and consequently all rules for just proportion 
 will be useless in respect to its strength. It will be impossible, however, to estimate the 
 strength of timber fit for any building, or to have any true knowledge of its proportions, 
 without some rule ; as without a rule everything must be done by mere conjecture. 
 
 Timber is much weakened by its own weight, except it stands perpendicular, which will 
 be shown in the following problems ; if a mortice is to be cut in the side of a piece of timber, 
 it will be much less weakened when cut near the top, than it will be if cut at the bottom, 
 provided the tenon is drove hard in to fill up the mortice. 
 
 The bending of timber will be nearly in proportion to the weight that is laid on it ; no 
 beam ought to be trusted for any long time with above one-third or one-fourth part of the 
 weight it will absolutely carry : for experiment proves, that a far less weight will break a 
 piece of timber when hung to it for any considerable time, than what is sufficient to break it 
 when first applied. , 
 
APPENDIX. 101 
 
 PROBLEM I. 
 
 Having the length and weight of a beam that can just support a given weight, to find 
 the length of another beam of the same scantling that shall just break with its own weight. 
 Let ? = the length of the first beam, 
 
 L = the length of the second ; 
 a = the weight of the first beam, 
 w = the additional weight that will break it. 
 And because the weights that will break beams of the same scantling are reciprocally as 
 their lengths, 
 
 a 
 11 a A 
 
 therefore — : — ::io + -: Z = TF= the weight that will break the greater beam ; be- 
 
 J L 2 L 
 
 cause to + ^ is the whole weight that will break the lesser beam. 
 
 But the weights of beams of the same scantling are to one another as their lengths : 
 
 Whence, I : L : : ^ : -^r— = TThalf the weight of the greater beam. 
 A At 
 
 Now the beam cannot break by its own weight, unless the weight of the beam be equal 
 to the weight that will break it : 
 
 a 
 La 1C + 2 2w+a 
 
 Wherefore, = I = I .: L^ a = 2wP + a P, 
 
 21 L 2L 
 
 .-. a : 2w + a : : P : L^, consequently ^ L^ = L = the length of the beam that can just 
 sustain its own weight. 
 
 PROBLEM II. 
 
 Having the weight of a beam that can just support a given weight in the middle, to find 
 the depth of another beam similar to the former, so that it shall just support its own weight. 
 Let d = the depth of the first beo-m ; 
 cc = the depth of the second ; 
 a = the weight of the first beam ; 
 10 = the additional weight that will break the first beam ; 
 
 then will w + ^ov — ^ — = ^^^ whole weight that will break the lesser beam. 
 
 And because the weights that will break similar beams are as the squares of their lengths, 
 
 ,„ „ 2vj + a 2x^y^io + ax^ .^ 
 .,d«:.^,.__: _^_ ^w 
 
102 APPENDIX, 
 
 the weights of similar beams are as the cubes of their corresponding sides : 
 Hence d^ -. x^ -. \ -^ : ^-yg — W 
 
 a x"^ 2 x"^ w + x"^ a r, t -, 
 
 .-. a : a + 2 w : : d : X =:^ the depth required. 
 As the weight of the lesser beam is to the weight of the lesser beam together with the 
 additional weight, so is the depth of the lesser beam to the depth of the greater beam. 
 
 Note. — Any other corresponding sides will answer the same purpose, for they are all proportioned to one another. 
 
 EXAMPLE. 
 
 Suppose a beam whose weight is one pound, and its length 10 feet, to carry a weight of 
 399-5 pounds, requireth the length of a beam similar to the former, of the same matter, so 
 that it shall break with its own weight. 
 here a = 1 
 and w = 399-5 
 
 then a + 2 ?^ = 800 = 1 + 2 X 399-5 
 d = 10 
 Then by the last problem it will be 1 : 800 : 10 : 8000 = x for the length of a beam 
 that will break by its own weight. 
 
 PROBLEM III. 
 
 The weight and length of a piece of timber being given, and the additional weight that 
 
 will break it, to find the length of a piece of timber similar to the former, so that this last 
 
 piece of timber shall be the strongest possible : 
 
 Put I = the length of the piece given 
 
 w = half its weight, 
 
 TT = the weight that will break it ; 
 
 x = the length required. 
 
 Then, because the weights that will break similar pieces of timber are in proportion to the 
 
 squares of their lengths, 
 
 T^ic ^ '{' w x"^ 
 .'. l'^ : x^ : :W+ tv : z^ = the whole weight that breaks the beam; 
 
 6 
 
 and because the Weights of similar beams are as the cubes of their lengths, or any other 
 corresponding sides, 
 
APPENDIX. 103 
 
 3 
 
 then P : x^ : : 10 : -j^ the weight of the beam; 
 
 consequently — ^- — j^ less -yg- is the weight that breaks the beam = a maximum ; 
 
 therefore its fluxion is nothing. 
 
 .*. that is, 2 Wxx + 2ioxx ^^ = nothing. 
 
 2 W+ 2io = — 5 — therefore, x = lx — ^ 
 
 Hence it appears from the foregoing problems, that large timber is weakened in a much 
 greater proportion than small timber, even in similar pieces, therefore a proper allowance 
 must be made for the weight of the pieces, as I shall here show by an 
 
 EXAMPLE. 
 
 Suppose a beam 12 feet long, and a foot square, whose weight is 3 hundred weight, to be 
 capable of supporting 20 hundred weight, what weight will a beam 20 feet long, 15 inches 
 deep, and 12 thick, be able to support ? 
 
 12 inches square 15 
 
 12 15 
 
 144 75 
 
 12 15 
 
 12)1728 225 
 12 
 
 144 
 
 2-0)270-0 
 
 135 
 
 But the weights of both beams are as their solid contents 
 
 therefore 12 inches square 
 12 
 
 144 
 
 144 inches = 12 feet long 
 
 15 deep 
 12 wide 
 
 180 
 
 240 length in inches 
 
 576 
 576 
 144 
 
 7200 
 360 
 
 20736 solid contents of the 1st beam 
 
104 
 
 20736 :43200::3 
 3 
 
 cwt. 
 
 20736)129600(6 .. 
 124416. 
 
 lb. 
 
 28 = 
 
 API 
 
 = the weight of the 2d 
 beam 
 
 >ENDIX. 
 
 144 : -.135:: 21-5 by prop, i: 
 21-5 
 
 67-5 
 135 
 270 
 
 . . 5184 
 112 
 
 12)2902-5 
 
 10368 
 5184 
 5184 
 
 12)241-875 
 
 20-15625 
 112 
 
 20736)580608(28 
 41472 
 
 31250 
 
 15625 
 15625 
 
 165888 
 165888 
 
 17-50000 
 16 
 
 30 
 5 
 
 
 8-0 
 
 21 cwt. 56 lb. is the weight that will break the first beam, and 20 cwt. 17 lb. 8 oz. the 
 weight that will break the second beam ; deduct out of these half their own weight. 
 
 20::17::8 
 3 : : 14 : : half 
 
 17... 3 
 
 Now 20 cwt. is the additional weight that will break the first beam; and 17 cwt. 3 lb. 
 8 oz. the weight that will break the second : in which the reader will observe, that 10 : : 3 : : 8 
 has a much less proportion to 20, than 20 cwt. 17 lb. 8 oz. has to 21 : : 56. From these 
 examples, the reader may see that a proper allowance ought to be made for all horizontal 
 beams ; that is, half the weights of beams ought to be deducted out of the whole weight that 
 they will carry, and that will give the weight that each piece will bear. 
 
 If several pieces of timber of the same scantling and length are applied one above ano- 
 ther, and supported by props at each end, they will be no stronger than if they were laid 
 side by side ; or this, which is the same thing, the pieces that are applied one above another 
 are no stronger than one single piece whose width is the width of the several pieces collected 
 into one, and its depth the depth of one of the pieces; it is therefore useless to cut a piece 
 of timber lengthways, and apply the pieces so cut one above another, for these pieces are not 
 so strong as before, even if bolted. 
 
 EXAMPLE. 
 
 Suppose a girder 16 inches deep, 12 inches thick, the length is immaterial, and let the 
 depth be cut lengthways in two equal pieces ; then will each piece be 8 inches deep, and 12 
 
APPENDIX. 105 
 
 inches thick. Now, according to the rule of proportioning timber, the square of IG inches, 
 that is, the depth before it was cut, is 25G, and the square of 8 inches is 64 ; but twice G4 is 
 only 128, therefore it appears that the two pieces apphed one above another, are but half the 
 strength of the solid piece, because 256 is double 128. 
 
 If a girder be cut lengthways in a perpendicular direction, the ends turned contrary, and 
 then bolted together, it will be but very little stronger than before it was cut ; for although 
 the ends being turned give to the girder an equal strength throughout, yet wherever a bolt 
 is, there it will be weaker, and it is very doubtful whether the girder will be any stronger for 
 this process of sawing and bolting ; and I say this from experience. 
 
 If there are two pieces of timber of an equal scantling (PL 51, Fig. B), the one lying 
 horizontal, and the other inclined, the horizontal piece being supported at the points e and /, 
 and the inclined piece at c and d, perpendicularly over e and/, according to the principles of 
 mechanics, these pieces will be equally strong. But, to reason a little on this matter, let it 
 be considered, that although the inclined piece D is longer, yet the weight has less eifect upon 
 it when placed in the middle, than the weight at h has upon the horizontal piece C, the 
 weights being the same ; it is therefore reasonable to conclude, that in these positions the one 
 will bear equal to the other. 
 
 The foregoing rules will be found of excellent use when timber is wanted to sujDport a 
 great weight ; for, by knowing the superincumbent weight, the strength may be computed to 
 a great degree of exactness, so that it shall be able to support the weight required. The 
 consequence is as bad when there is too much timber, as when there is too little, for nothing 
 is more requisite than a just proportion throughout the whole building, so that the strength 
 of every part shall always be in proportion to the stress ; for when there is more strength 
 given to some pieces than others, it encumbers the building, and consequently the foundations 
 are less capable of supporting the superstructure. 
 
 No judicious person, who has the care of constructing buildings, should rely on tables 
 of scanthngs, such as are commonly in books ; for example, in story posts the scantlings, 
 according to several authors, are as follows : 
 
 For 9 feet high 6 inches square. 
 
 12 8 
 
 15 10 
 
 18 12 
 
 14 
 
106 APPENDIX. 
 
 Now, according to this table, the scantlings are increased in proportion to the height ; 
 but there is no propriety in this, for each of these will bear weight in proportion to the 
 number 9, 16, 25, and 36, that is, in proportion to the square of their heights, 36 being 4 
 times 9 ; therefore the piece that is 18 feet long, will bear four times as much weight as that 
 piece which is 9 feet long ; but the 9 feet piece may have a much greater weight to carry 
 than an 18 feet piece, suppose double : in this case it must be near 12 inches square instead 
 of 6. The same is also to be observed in breast-summers, and in floors where they are wanted 
 to support a great weight ; but in common buildings, where there are only customary weights 
 to support, the common tables for floors will be near enough for practice. 
 
 To conclude the subject, it maybe proper to notice the following observations which 
 several authors have judiciously made, viz. ; that in all timber there is moisture, wherefore 
 all bearing timber ought to have a moderate camber, or roundness on the upper side, for till 
 that moisture is dried out, the timber will swag with its own weight. 
 
 But then observe, that it is best to truss girders when they are fresh sawn out, for by 
 their drying and shrinking, the trusses become more and more tight. 
 
 That all beams or ties be cut, or in framing forced to a roundness, such as an inch in 
 twenty feet in length, and that principal rafters also be cut or forced in framing, as before ; 
 because all joists, though ever so well framed, by the shrinking of the timber and weight of 
 the covering will swag, sometimes so much as not only to be visible, but to offend the eye : 
 by this precaution the truss will always appear well. 
 
 Likewise observe, that all case-bays, either in floors or roofs, do not exceed twelve feet 
 if possible ; that is, do not let your joints in floors exceed twelve feet, nor your purlines in 
 roofs, &c., but rather let their bearing be eight, nine, or ten feet. This should be regarded in 
 forming the plan. 
 
 Also, in bridging floors, do not place your binding or strong joists above three, four, or 
 five feet apart, and take care that your bridging or common joists are not above ten or twelve 
 inches apart, that is, between one joist and another. 
 
 Also, in fitting down tie-beams upon the wall plates, never make your cocking too large, 
 nor yet too near the outside of the wall plate, for the grain of the wood being cut across in 
 the tie-beam, the piece that remains upon its end will be apt to split ofi", but keeping it near 
 the inside will tend to secure it. 
 
 Likewise observe, never to make double tenons for bearing uses, such as binding joists, 
 
APPENDIX. 107 
 
 common joists, or puvliues; for, in the first place, it very much weakens wliatever you frame 
 it into, and in the second place, it is a rarity to have a draught to both tenons, that is, to 
 draw both joints close ; for the pin in passing through both tenons, if there is a draught in 
 each, will bend so much, that unless it be as tough as wire, it must needs break in driving, 
 and consequently do more hurt than good. 
 
 Roofs will be much stronger if the purlines are notched above the principal rafters, than 
 if they are framed into the side of the principals ; for by this means, when any weight is 
 applied in the middle of the purline, it cannot bend, being confined by the other rafters ; and 
 if it do, the sides of the other rafters must needs bend along with it ; consequently it has the 
 strength of all the other rafters sideways added to it. 
 
 THE END, 
 
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