centroid & moment of inertia
7 likes16,507 views
This document discusses methods for determining areas, volumes, centroids, and moments of inertia of basic geometric shapes. It begins by introducing the method of integration for calculating areas and volumes. Standard formulas are provided for areas of rectangles, triangles, circles, sectors, and parabolic spandrels. Formulas are also provided for volumes of parallelepipeds, cones, spheres, and solids of revolution. The concepts of center of gravity, centroid, and center of mass are defined. Equations are given for calculating the centroids of uniform bodies, plates, wires, and line segments. Methods for finding centroids of straight lines, arcs, semicircles, and quarter circles are illustrated.
centroid & moment of inertia
- 1. 2 CENTROID AND MOMENT OF INERTIA Under this topic first we will see how to find the areas of given figures and the volumes of given solids. Then the terms centre of gravity and centroids are explained. Though the title of this topic do not indicate the centroid of line segment, that term is also explained, since the centroid of line segment will be useful in finding the surface area and volume of solids using theorems of Pappus and Guldinus. Then the term first moment of area is explained and the method of finding centroid of plane areas and volumes is illustrated. After explaining the term second moment of area, the method of finding moment of inertia of plane figures about x-x or y-y axis is illustrated. The term product moment of inertia is defined and the mehtod of finding principal moment of inertia is presented. At the end the method of finding mass moment of inertia is presented. 2.1 DETERMINATION OF AREAS AND VOLUMES In the school education methods of finding areas and volumes of simple cases are taught by many methods. Here we will see the general approach which is common to all cases i.e. by the method of integration. In this method the expression for an elemental area will be written then suitable integrations are carried out so as to take care of entire surface/volume. This method is illustrated with standard cases below, first for finding the areas and latter for finding the volumes: A: Area of Standard Figures (i) Area of a rectangle Let the size of rectangle be b × d as shown in Fig. 2.1. dA is an elemental area of side dx × dy. Area of rectangle, A = dA dx dy d d b b = −− zzz 2 2 2 2 = x yb b d d − −2 2 2 2 = bd. Fig. 2.1 d/2 d/2 b/2 b/2 O y dx dy x CHAPTER 70
- 2. CENTROID AND MOMENT OF INERTIA 71 If we take element as shown in Fig. 2.2, A = dA b dy d d d d = ⋅ −− zz 2 2 2 2 = b y d d − 2 2 = bd (ii) Area of a triangle of base width ‘b’ height ‘h’. Referring to Fig. 2.3, let the element be selected as shown by hatched lines Then dA = b′dy = b y h dy A = dA b y h dy h h 0 0 z z= = 2 0 2 2 h yb bh h = (iii) Area of a circle Consider the elemental area dA = rdθdr as shown in Fig. 2.4. Now, dA = rdθ dr r varies from O to R and θ varies from O to 2π ∴ A = rd dr R θ π 00 2 zz = r d R2 00 2 2 L NM O QPz θ π = R d 2 0 2 2 θ π z = R2 0 2 2 θ π = R R 2 2 2 2. π π= In the above derivation, if we take variation of θ from 0 to π, we get the area of semicircle as πR2 2 and if the limit is from 0 to π/2 the area of quarter of a circle is obtained as πR2 4 . dy y d/2 d/2 b Fig. 2.2 y h b¢ dy b Fig. 2.3 Fig. 2.4 O dr rdq dqr q xRR y
- 3. ENGINEERING MECHANICS72 (iv) Area of a sector of a circle Area of a sector of a circle with included angle 2α shown in Fig. 2.5 is to be determined. The elemental area is as shown in the figure dA = rdθ . dr θ varies from –α to αand r varies from O to R ∴ A = dA r d dr R = zzz − θ α α 0 = r d R d R2 0 2 2 2 L NM O QP = − − z zθ θ α α α α = R R R 2 2 2 2 2 2θ α α α α L NM O QP = = − a f (v) Area of a parabolic spandrel Two types of parabolic curves are possible (a) y = kx2 (b) y2 = kx Case a: This curve is shown in Fig. 2.6. The area of the element dA = y dx = kx2 dx ∴ A = dA kx dx a a 0 2 0 z z= = k x ka a3 0 3 3 3 L NM O QP = We know, when x = a, y = h i.e., h = ka2 or k = h a2 ∴ A = ka h a a ha rd 3 2 3 3 3 1 3 1 3 = = = the area of rectangle of size a × h Case b: In this case y2 = kx Referring to Fig. 2.7 dA = y dx = kx dx A = y dx kx dx a a 0 0 z z= Fig. 2.5 x h x = a y = kx 2 x dx y Fig. 2.6 y O d dr rdGr G a R 0
- 4. CENTROID AND MOMENT OF INERTIA 73 = k x k a a 3 2 0 3 22 3 2 3 L NM O QP = We know that, when x = a, y = h ∴ h2 = ka or k = h a 2 Hence A = h a a. . 2 3 3 2 i.e., A = 2 3 2 3 ha = rd the area of rectangle of size a × h (vi) Surface area of a cone Consider the cone shown in Fig. 2.8. Now, y = x h R Surface area of the element, dA = 2πy dl = 2π x h R dl = 2π α x h R dx sin ∴ A = 2 2 2 0 π α R h x h sin L NM O QP = π α π Rh Rl sin = (vii) Surface area of a sphere Consider the sphere of radius R shown in Fig. 2.9. The element considered is the parallel circle at distance y from the diametral axis of sphere. dS = 2πx Rdθ = 2π R cos θ Rdθ, since x = R cos θ ∴ S = 2πR2 cos θ θ π π d − z2 2 = 2 2 2 2 π θ π π R sin − = 4πR2 y y = kx 2 hh xx dx x = a Fig. 2.7 Fig. 2.8 dy xx Rdq yy dq q Fig. 2.9 dl y a h x dx R
- 5. ENGINEERING MECHANICS74 B: Volume of Standard Solids (i) Volume of a parallelpiped. Let the size of the parallelpiped be a × b × c. The volume of the element is dV = dx dy dz V = dx dy dz cba 000 zzz = x y z abc a b c 0 0 0 = (ii) Volume of a cone: Referring to Fig. 2.8 dV = πy2 . dx = π x h R dx 2 2 2 , since y = x h R V = π π h R x dx h R x hh 2 2 2 2 2 3 00 3 = L NM O QPz = π π h R h R h 2 2 3 2 3 3 = (iii) Volume of a sphere Referring to Fig. 2.9 dV = πx2 dy But x2 + y2 = R2 i.e., x 2 = R2 – y2 ∴ dV = π (R 2 – y2 )dy V = π R y dy R R 2 2 − − z e j = π R y y R R 2 3 3 − L N MM O Q PP− = π R R R R R2 3 3 3 3 3 ⋅ − − − − −R S| T| U V| W| L N MM O Q PP a f = π πR R3 3 1 1 3 1 1 3 4 3 − + − L NM O QP = The surface areas and volumes of solids of revolutions like cone, spheres may be easily found using theorems of Pappus and Guldinus. This will be taken up latter in this chapter, since it needs the term centroid of generating lines.
- 6. CENTROID AND MOMENT OF INERTIA 75 2.2 CENTRE OF GRAVITY AND CENTROIDS Consider the suspended body shown in Fig. 2.10a. The self weight of various parts of this body are acting vertically downward. The only upward force is the force T in the string. To satisfy the equilibrium condition the resultant weight of the body W must act along the line of string 1–1. Now, if the position is changed and the body is suspended again (Fig. 2.10b), it will reach equilibrium condition in a particular position. Let the line of action of the resultant weight be 2– 2 intersecting 1–1 at G. It is obvious that if the body is suspended in any other position, the line of action of resultant weight W passes through G. This point is called the centre of gravity of the body. Thus centre of gravity can be defined as the point through which the resultant of force of gravity of the body acts. T 1 1 1 2 2 1 G W W = å w1 T w1 W = åw1 1(a) (b) Fig. 2.10 The above method of locating centre of gravity is the prac- tical method. If one desires to locating centre of gravity of a body analytically, it is to be noted that the resultant of weight of various portions of the body is to be determined. For this Varignon’s theorem, which states the moment of resultant force is equal to the sum of moments of component forces, can be used. Referring to Fig. 2.11, let Wi be the weight of an element in the given body. W be the total weight of the body. Let the coordinates of the element be xi, yi, zi and that of centroid G be xc, yc, zc. Since W is the resultant of Wi forces, W = W1 + W2 + W3 . . . = ΣWi and Wxc = W1x1 + W2x2 + W3x3 + . . . ∴ Wxc = ΣWixi = Üxdw Similarly, Wyc = ΣWiyi = Üydw Eqn. (2.1) and Wzc = ΣWizc = Üzdw Wi G W yi yc xO zizi zczc xixi xcxc z Fig. 2.11 U V| W|
- 7. ENGINEERING MECHANICS76 If M is the mass of the body and mi that of the element, then M = W g and mi = W g i , hence we get Mxc = Σmixi = zxidm Myc = Σmiyi = zyidm Eqn. (2.2) and Mzc = Σmizi = zzidm If the body is made up of uniform material of unit weight g, then we know Wi = Uig, where U represents volume, then equation 2.1 reduces to Vxc = ΣVixi = zxdV Vyc = ΣViyi = zydV Eqn. (2.3) Vzc = ΣVizi= zzdV If the body is a flat plate of uniform thickness, in x-y plane, Wi = g Ait (Ref Fig. 2.12). Hence equation 2.1 reduces to Axc = ΣAixi = zx dA Ayc = ΣAiyi = zy dA Eqn. (2.4) y z W xc yc Wi (x , y )i c(x , y )i c dL W = A dLi g Fig. 2.12 Fig. 2.13 If the body is a wire of uniform cross section in plane x, y (Ref. Fig. 2.13) the equation 2.1 reduces to Lxc = Σ Lixi = zx dL Lyc = Σ Liyi = zy dL Eqn. (2.5) The term centre of gravity is used only when the gravitational forces (weights) are considered. This term is applicable to solids. Equations 2.2 in which only masses are used the point obtained is termed as centre of mass. The central points obtained for volumes, surfaces and line segments (obtained by eqns. 2.3, 2.4 and 2.5) are termed as centroids. 2.3 CENTROID OF A LINE Centroid of a line can be determined using equation 2.5. Method of finding the centroid of a line for some standard cases is illustrated below: (i) Centroid of a straight line: Selecting the x-coordinate along the line (Fig. 2.14) Fig. 2.14 U V| W| U V| W| UVW UVW dx G x L O x
- 8. CENTROID AND MOMENT OF INERTIA 77 Lxc = x dx x LL L 0 2 0 2 2 2 z = L NM O QP = ∴ xc = L 2 Thus the centroid lies at midpoint of a straight line, whatever be the orientation of line (Ref. Fig. 2.15). G O L 2 L x y G L L 2 O y L 2 cos G L 2 sin x Fig. 2.15 (ii) Centroid of an Arc of a Circle Referring to Fig. 2.16, L = Length of arc = R 2α dL = Rdθ Hence from eqn. 2.5 xcL = xdL − zα α i.e., xc R 2α = R − zα α cos θ . Rdθ = R2 sin θ α α − (i) ∴ xc = R R R2 2 2 × = sin sinα α α α and yc L y dL − zα α = R − zα α sin θ . Rdθ = R2 − − cos θ α α (ii) = 0 ∴ yc = 0 From equation (i) and (ii) we can get the centroid of semicircle shown in Fig. 2.17 by putting α = π/2 and for quarter of a circle shown in Fig. 2.18 by putting α varying from zero to π/2. Rdq O a a dq q x xx Fig. 2.16
- 9. ENGINEERING MECHANICS78 RR G G RR Fig. 2.17 Fig. 2.18 For semicircle xc = 2R π yc = 0 For quarter of a circle, xc = 2R π yc = 2R π (iii) Centroid of composite line segments: The results obtained for standard cases may be used for various segments and then the equations 2.5 in the form xcL = ΣLixi ycL = ΣLiyi may be used to get centroid xc and yc. If the line segments is in space the expression zcL = ΣLizi may also be used. The method is illustrated with few examples below: Example 2.1 Determine the centroid of the wire shown in Fig. 2.19. y D G3 C45° G1 A B k G2 200 mm200 mm 300 m m 300 m m 600 mm600 mm Fig. 2.19
- 10. CENTROID AND MOMENT OF INERTIA 79 Solution. The wire is divided into three segments AB, BC and CD. Taking A as origin the coordi- nates of the centroids of AB, BC and CD are G1(300, 0); G2(600, 100) and G3(600 – 150 cos 45°; 200 + 150 sin 45°) i.e. G3(493.93, 306.07) L1 = 600 mm, L2 = 200 mm, L3 = 300 mm ∴ Total length L = 600 + 200 + 300 = 1100 mm ∴ From the eqn. Lxc = ΣLixi, we get 1100 xc = L1x1 + L2x2 + L3x3 = 600 × 300 + 200 × 600 + 300 × 493.93 ∴ xc = 407.44 mm Ans. Now, Lyc = ΣLiyi 1100 yc = 600 × 0 + 200 × 100 + 300 × 306.07 yc = 101.66 mm Ans. Example 2.2 Locate the centroid of the uniform wire bent as shown in Fig. 2.20. A G1 G2 150 30° G3 D B 400 mm C All dimensions in mm 250 Fig. 2.20 Solution. The composite figure is divided into 3 simple figures and taking A as origin coordinates of their centroids noted as shown below: AB—a straight line L1 = 400 mm, G1 (200, 0) BC—a semicircle L2 = 150 π = 471.24, G2 475 2 150 , ×F HG I KJπ i.e., G2 (475, 92.49) CD—a straight line L3 = 250; x3 = 400 + 300 + 250 2 cos 30° = 808.25 mm y3 = 125 sin 30 = 62.5 mm ∴ Total length L = L1 + L2 + L3 = 1121.24 mm ∴ Lxc = ΣLixi gives 1121.24 xc = 400 × 200 + 471.24 × 475 + 250 × 808.25 xc = 451.20 mm Ans. Lyc = ΣLiyi gives
- 11. ENGINEERING MECHANICS80 1121.24 yc = 400 × 0 + 471.24 × 95.49 + 250 × 62.5 yc = 54.07 mm Ans. Example 2.3 Locate the centroid of uniform wire shown in Fig. 2.21. Note: portion AB is in x-z plane, BC in y-z plane and CD in x-y plane. AB and BC are semi circular in shape. r= 100 r= 100 r = 140r = 140 z y C 45° A x D B Fig. 2.21 Solution. The length and the centroid of portions AB, BC and CD are as shown in table below: Table 2.1 Portion Li xi yi zi AB 100π 100 0 2 100× π BC 140π 0 140 2 140× π CD 300 300 sin 45° 280 + 300 cos 45° = 492.13 0 ∴ L = 100π + 140π + 300 = 1053.98 mm From eqn. Lxc = ΣLixi, we get 1053.98 xc = 100π × 100 + 140π × 0 + 300 × 300 sin 45° xc = 90.19 mm Ans. Similarly, 1053.98 yc = 100π × 0 + 140π × 140 + 300 × 492.13 yc = 198.50 mm Ans. and 1053.98 zc = 100 200 140 2 140 300 0π π π π × + × × + × zc = 56.17 mm Ans. 2.4 FIRST MOMENT OF AREA AND CENTROID From equation 2.1, we have xc = W x W i i∑ , yc = W y W i i∑ and zc = W z W i i∑
- 12. CENTROID AND MOMENT OF INERTIA 81 From the above equation we can make the statement that distance of centre of gravity of a body from an axis is obtained by dividing moment of the gravitational forces acting on the body, about the axis, by the total weight of the body. Similarly from equation 2.4, we have, xc = A x A i i∑ , yc = A y A i i∑ By terming ΣAix: as the moment of area about the axis, we can say centroid of plane area from any axis is equal to moment of area about the axis divided by the total area. The moment of area ΣAix: is termed as first moment of area also just to differentiate this from the term ΣAixE , which will be dealt latter. It may be noted that since the moment of area about an axis divided by total area gives the distance of the centroid from that axis, the moment of area is zero about any centroidal axis. Difference between Centre of Gravity and Centroid From the above discussion we can draw the following differences between centre of gravity and centroid: (1) The term centre of gravity applies to bodies with weight, and centroid applies to lines, plane areas and volumes. (2) Centre of gravity of a body is a point through which the resultant gravitational force (weight) acts for any orientation of the body whereas centroid is a point in a line plane area volume such that the moment of area about any axis through that point is zero. Use of Axis of Symmetry Centroid of an area lies on the axis of symmetry if it exits. This is useful theorem to locate the centroid of an area. This theorem can be proved as follows: Consider the area shown in Fig. 2.22. In this figure y-y is the axis of symmetry. From eqn. 2.4, the distance of centroid from this axis is given by: A x A i i∑ Consider the two elemental areas shown in Fig. 2.22, which are equal in size and are equidistant from the axis, but on either side. Now the sum of moments of these areas cancel each other since the areas and distances are the same, but signs of distances are opposite. Similarly, we can go on considering an area on one side of symmet- ric axis and corresponding image area on the other side, and prove that total moments of area (ΣAixi) about the symmetric axis is zero. Hence the distance of centroid from the symmetric axis is zero, i.e. centroid always lies on symmetric axis. Making use of the symmetry we can conclude that: (1) Centroid of a circle is its centre (Fig. 2.23); (2) Centroid of a rectangle of sides b and d is at distance b 2 and d 2 from the corner as shown in Fig. 2.24. Y Axis of symmetry xx xx XO Fig. 2.22
- 13. ENGINEERING MECHANICS82 G b/2b/2 bb dd d/2d/2 G Fig. 2.23 Fig. 2.24 Determination of Centroid of Simple Figures From First Principle For simple figures like triangle and semicircle, we can write general expression for the elemental area and its distance from an axis. Then equations 2.4 y — = ydA A z x— = xdA A z The location of the centroid using the above equations may be considered as finding centroid from first principles. Now, let us find centroid of some standard figures from first principles. Centroid of a Triangle Consider the triangle ABC of base width b and height h as shown in Fig. 2.25. Let us locate the distance of centroid from the base. Let b1 be the width of elemental strip of thickness dy at a distance y from the base. Since DAEF and DABC are similar triangles, we can write: b b 1 = h y h − b1 = h y h b y h b −F HG I KJ = − F HG I KJ1 ∴ Area of the element = dA = b1dy = 1− F HG I KJy h b dy Area of the triangle A = 1 2 bh ∴ From eqn. 2.4 y — = Movement of area Total area = zydA A Now, ∫ ydA = y y h b dy h 1 0 − F HG I KJz A E B dy F b1b1 bb C hh yy Fig. 2.25
- 14. CENTROID AND MOMENT OF INERTIA 83 = y y h b dy h − F HG I KJz 2 0 = b y y h h2 3 0 2 3 − L N MM O Q PP = bh2 6 ∴ y — = ydA A bh bh z = × 2 6 1 1 2 ∴ y — = h 3 Thus the centroid of a triangle is at a distance h 3 from the base (or 2 3 h from the apex) of the triangle where h is the height of the triangle. Centroid of a Semicircle Consider the semicircle of radius R as shown in Fig. 2.26. Due to symmetry centroid must lie on y axis. Let its distance from diametral axis be y . To find y , consider an element at a distance r from the centre O of the semicircle, radial width being dr and bound by radii at θ and θ + dθ. Area of element = r dθdr. Its moment about diametral axis x is given by: rdθ × dr × r sin θ = r2 sin θ dr dθ ∴ Total moment of area about diametral axis, r dr d R 2 00 zz π θ θsin = r d R3 00 3 L NM O QPz sin θ θ π = R3 0 3 − cos θ π = R R3 3 3 1 1 2 3 + = Area of semicircle A = 1 2 2 πR ∴ y — = Moment of area Total area = 2 3 1 2 3 2 R Rπ = 4 3 R π Thus, the centroid of the circle is at a distance 4 3π R from the diametral axis. Fig. 2.26 dq r dr O X Y R q
- 15. ENGINEERING MECHANICS84 Centroid of Sector of a Circle Consider the sector of a circle of angle 2α as shown in Fig. 2.27. Due to symmetry, centroid lies on x axis. To find its distance from the centre O, consider the elemental area shown. Area of the element = rdθ dr Its moment about y axis = rdθ × dr × r cos θ = r2 cos θ drdθ ∴ Total moment of area about y axis = r drd R 2 0 cos θ θ α α zz− = r R3 0 3 L NM O QP −sin θ α α = R3 3 2 sin α Total area of the sector = rdrd R θ α α 0 zz− = r d R2 0 2 L NM O QP− z θ α α = R2 2 θ α α − = R2 α The distance of centroid from centre O = Moment of area about axis Area of the figure y = 2 3 2 3 3 2 R R R sin sin α α α α= Centroid of Parabolic Spandrel Consider the parabolic spandrel shown in Fig. 2.28. Height of the element at a distance x from O is y = kx2 Y X dr dq q rr 2a a O RR G Fig. 2.27
- 16. CENTROID AND MOMENT OF INERTIA 85 Width of element = dx ∴ Area of the element = kx2 dx ∴ Total area of spandrel = kx dx a 2 0 z = kx ka a3 0 3 3 3 L NM O QP = Moment of area about y axis = kx dx x a 2 0 ×z = kx dx a 3 0 z = kx a4 0 4 L NM O QP = ka4 4 Moment of area about x axis = dAy 2 0 α z = kx dx kx k x dx k xa aa 2 2 2 4 0 2 5 00 2 2 2 5 = = × L NM O QPzz = k a2 5 10 ∴ x = ka ka a4 3 4 3 3 4 ÷ = y = k a ka ka 2 5 3 2 10 3 3 10 ÷ = From the Fig. 2.28, at x = a, y = h ∴ h = ka2 or k = h a2 ∴ y = 3 10 3 102 2 × = h a a h Thus, centroid of spandrel is 3 4 3 10 a h , F HG I KJ Centroids of some common figures are shown in Table 2.2. y = kx 2Y O xx dx aa hh X – –G(x, y) Fig. 2.28
- 17. ENGINEERING MECHANICS86 Table 2.2. Centroid of Some Common Figures Shape Figure N O Area Triangle y x hh G bb — h 3 bh 2 Semicircle y x rrG 0 4 3 R π πR2 2 Quarter circle y x RR G 4 3 R π 4 3 R π πR2 4 Sector of a circle y xG 2a2a 2 3 R α sin a 0 αR2 Parabola h G 2a x 0 3 5 h 4 3 ah Semi parabola 3 8 a 3 5 h 2 3 ah Parabolic spandrel y x aa G hh 3 4 a 3 10 h ah 3 Centroid of Composite Sections So far, the discussion was confined to locating the centroid of simple figures like rectangle, triangle, circle, semicircle, etc. In engineering practice, use of sections which are built up of many simple sections is very common. Such sections may be called as built-up sections or composite sections. To locate the centroid of composite sections, one need not go for the first principle (method of integration). The given composite section can be split into suitable simple figures and then the centroid of each simple figure can be found by inspection or using the standard formulae listed in Table 2.2. Assuming the area of the simple figure as concentrated at its centroid, its moment about an axis can be found by multiplying the area with distance of its centroid from the
- 18. CENTROID AND MOMENT OF INERTIA 87 reference axis. After determining moment of each area about reference axis, the distance of centroid from the axis is obtained by dividing total moment of area by total area of the composite section. Example 2.4 Locate the centroid of the T-section shown in the Fig. 2.29. Solution. Selecting the axis as shown in Fig. 2.29, we can say due to symmetry centroid lies on y axis, i.e. x = 0. Now the given T-section may be divided into two rectan- gles A1 and A2 each of size 100 × 20 and 20 × 100. The centroid of A1 and A2 are g1(0, 10) and g2(0, 70) respectively. ∴ The distance of centroid from top is given by: y = 100 20 10 20 100 70 100 20 20 100 × × + × × × + × = 40 mm Hence, centroid of T-section is on the symmetric axis at a distance 40 mm from the top. Ans. Example 2.5 Find the centroid of the unequal angle 200 × 150 × 12 mm, shown in Fig. 2.30. Solution. The given composite figure can be divided into two rectangles: A1 = 150 × 12 = 1800 mm2 A2 = (200 – 12) × 12 = 2256 mm2 Total area A = A1 + A2 = 4056 mm2 Selecting the reference axis x and y as shown in Fig. 2.30. The centroid of A1 is g1 (75, 6) and that of A2 is: g2 6 12 1 2 200 12, + − L NM O QPa f i.e., g2 (6, 106) ∴ x = Movement about axis Total area y = A x A x A 1 1 2 2+ = 1800 75 2256 6 4056 × + × = 36.62 mm y = Movement about axis Total area x = A y A y A 1 1 2 2+ = 1800 6 2256 106 4056 × + × = 61.62 mm Thus, the centroid is at x — = 36.62 mm and y — = 61.62 mm as shown in the figure Ans. 100100 O A1 g1 –y–y X 20 G g2 A2 2020 100100 Y All dimensions in mmAll dimensions in mm Fig. 2.29 Fig. 2.30 150 X12 A1 O –x g1–y 200 G g2 A2 12 Y All dimensions in mm
- 19. ENGINEERING MECHANICS88 Example 2.6 Locate the centroid of the I-section shown in Fig. 2.31. Y 100100 g1A120 100100 2020 A2 g2 G 3030 A3 g3 O 150150 X –y–y All dimensions in mmAll dimensions in mm Fig. 2.31 Solution. Selecting the co-ordinate system as shown in Fig. 2.31, due to symmetry centroid must lie on y axis, i.e., x = 0 Now, the composite section may be split into three rectangles A1 = 100 × 20 = 2000 mm2 Centroid of A1 from the origin is: y1 = 30 + 100 + 20 2 = 140 mm Similarly A2 = 100 × 20 = 2000 mm2 y2 = 30 + 100 2 = 80 mm A3 = 150 × 30 = 4500 mm2 , and y3 = 30 2 = 15 mm ∴ y = A y A y A y A 1 1 2 2 3 3+ + = 2000 140 2000 80 4500 15 2000 2000 4500 + + × + × + + = 59.71 mm Thus, the centroid is on the symmetric axis at a distance 59.71 mm from the bottom as shown in Fig. 2.31. Ans.