Structural Analysis (MindTap Course List)
Structural Analysis (MindTap Course List)
5th Edition
ISBN: 9781133943891
Author: Aslam Kassimali
Publisher: Cengage Learning
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Chapter 7, Problem 64P
To determine

Find the slope and deflection at point D of the beam using Castigliano’s second theorem.

Expert Solution & Answer
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Answer to Problem 64P

The slope at point D of the beam is 0.0071rad_ acting in the clockwise direction.

The deflection at point D of the beam is 0.62in._.

Explanation of Solution

Given information:

The beam is given in the Figure.

Value of E is 30,000 ksi, I is 4,000in.4 for span AB, and 3,000in.4 for span BD.

Apply the sign conventions for calculating reactions, forces and moments using the three equations of equilibrium as shown below.

  • For summation of forces along x-direction is equal to zero (Fx=0), consider the forces acting towards right side as positive (+) and the forces acting towards left side as negative ().
  • For summation of forces along y-direction is equal to zero (Fy=0), consider the upward force as positive (+) and the downward force as negative ().
  • For summation of moment about a point is equal to zero (Matapoint=0), consider the clockwise moment as negative and the counter clockwise moment as positive.

Calculation:

Let apply a load P and couple M¯ at point D in the desired direction to find the deflection and slope.

The value of load P is 35 k and couple M¯ is zero.

Sketch the beam with load P and couple M¯ as shown in Figure 1.

Structural Analysis (MindTap Course List), Chapter 7, Problem 64P

Let the equation for bending moment at distance x in terms of load P be M, the derivative of M with respect to P is MP.

The derivative of M with respect to M¯ is MM¯.

Find the reactions and moment at the supports:

Consider portion BCD, Summation of moments about B is equal to 0.

MB=08CyP(16)M¯=08Cy=16P+M¯Cy=2P+M¯8

Summation of forces along y-direction is equal to 0.

+Fy=0Ay+Cy2.5(16)P=0Ay+2P+M¯82.5(16)P=0Ay=40PM¯8

Summation of moments about A is equal to 0.

MA=0MAP(32)M¯+Cy(24)2.5(16)(162)=0MA32PM¯+48P+3M¯320=0MA=32016P2M¯

Find the equations for M, MM¯, and MP for the 3 segments of the beam as shown in Table 1.

Segmentx-coordinateMMM¯MP
OriginLimits (ft)
DCD08PxM¯1x
CBD816PxM¯+(2P+M¯8)(x8)1+18(x8)x16
ABA016(32016P2M¯)+(40PM¯8)x1.25x22x816x

The expression for slope at D using Castigliano’s second theorem (θD) is shown as follows:

θD=0L(MM¯)MEIdx (1)

Here, L is the length of the beam.

Rearrange Equation (1) for the limits 08, 816, and 016 as follows.

θD=1E[1I08(MM¯)Mdx+1I816(MM¯)Mdx+1I016(MM¯)Mdx]

Substitute the value of load P as 35 k and couple M¯ as 0 in the column 4 of Table 1.

Substitute 1 for MM¯, 35x for M for the limit 08, 1+18(x8) for MM¯, 35x+70(x8) for M for the limit 816, 2x8 for MM¯, 4I3 for I, and 240+5x1.25x2 for M for the limit 016.

θD=1E[1I08(1)(35x)dx+1I816(1+18(x8))(35x+70(x8))dx+143I016(2x8)(240+5x1.25x2)dx]=1E[1I08(35x)dx+1I816(70x140x+1,12035x28+70x28560x8)dx+34I016(480+10x2.5x2240x85x28+1.25x38)dx]=1EI[(35x22)08+(140x22+1,120x+4.375x33)816+34(480x20x223.125x33+1.25x432)08]=4,426.67k-ft2EI

Substitute 30,000ksi for E and 3,000in.4 for I.

θD=4,426.67k-ft2(30,000ksi)(3,000in.4)=4,426.67k-ft2×122in21ft2(30,000ksi)(3,000in.4)=0.0071rad

Therefore, the slope at point D of the beam is 0.0071rad_ acting in the clockwise direction.

The expression for deflection at D using Castigliano’s second theorem (ΔD) is shown as follows:

ΔD=0L(MP)MEIdx (2)

Here, L is the length of the beam.

Rearrange Equation (2) for the limits 08, 816, and 016 as follows.

ΔD=1EI[08(MP)Mdx+816(MP)Mdx+016(MP)Mdx]

Substitute x for MP, 35x for M for the limit 08, x16 for MP, 35x+70(x8) for M for the limit 816, 16x for MP, 4I3 for I, and 240+5x1.25x2 for M for the limit 016.

ΔD=1E[1I08(x)(35x)dx+1I816(x16)(35x+70(x8))dx+143I016(16x)(240+5x1.25x2)dx]=1E[1I08(35x2)dx+1I816(35x2+70x2560x+560x1,120x+8,960)dx+34I016(3,840+80x20x2240x5x2+1.25x3)dx]=1E[1I08(35x2)dx+1I816(350x21,120x+8,960)dx+34I016(3,840160x25x2+1.25x3)dx]=1EI[(35x33)08+(350x331,120x22+8,960x)816+34(3,840x160x2225x33+1.25x44)08]

ΔD=32,426.67k-ft3EI

Substitute 30,000ksi for E and 3,000in.4 for I.

ΔD=32,426.67k-ft3(30,000ksi)(3,000in.4)=32,426.67k-ft3×123in31ft3(30,000ksi)(3,000in.4)=0.62in.

Therefore, the deflection at point D of the beam is 0.62in._.

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