Mechanics of Materials Plus Mastering Engineering with Pearson eText - Access Card Package (10th Edition)
Mechanics of Materials Plus Mastering Engineering with Pearson eText - Access Card Package (10th Edition)
10th Edition
ISBN: 9780134518121
Author: Russell C. Hibbeler
Publisher: PEARSON
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Chapter 9, Problem 9.1RP
To determine

The principal stresses at point A.

Expert Solution & Answer
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Answer to Problem 9.1RP

The principal stresses at point A (σ1) and (σ2) are 119psi_ and 119psi_.

Explanation of Solution

Calculate the normal stress (σA) acting at point A using the relation:

σA=MyzIy (1)

Here, My is the moment in y-direction, z is the distance in z-direction from centroid to point A, and Iy is the moment of inertia.

Sketch the internal forces and moment in free body diagram at point A as shown in Figure 1.

Mechanics of Materials Plus Mastering Engineering with Pearson eText - Access Card Package (10th Edition), Chapter 9, Problem 9.1RP , additional homework tip  1

Apply Equilibrium equations to find the value of moment at point A.

Sum of moments in y-direction is equal to 0.

ΣMy=0My(20×10)=0My=200lbin

Sum of moments in x-direction is equal to 0.

ΣMx=0Tx+(20×12)=0Tx=240lbin

Sum of forces in z-direction is equal to 0.

ΣVz=0Vz20=0Vz=20lb

Find the moment of inertia of the section (I):

Outer radius of the pipe is 1.5 in. and the inner radius of the pipe is 1.375 in.

I=π4[(1.5in)4(1.375in)4]=1.1687in4

Find the polar moment of inertia of the section (J):

J=π2[(1.5in)4(1.375in)4]=2.3374in4

Sketch the cross section at point A as shown in Figure 2.

Mechanics of Materials Plus Mastering Engineering with Pearson eText - Access Card Package (10th Edition), Chapter 9, Problem 9.1RP , additional homework tip  2

Find the first moment of area at point A (QA)z using the relation:

(QA)z=Σy¯'A' (2)

Here, y¯' is the centroid distance to point A and A' is the area from centroid to point A.

Refer to Figure 2.

(QA)z=4×1.5in.3π[12×π×(1.5in.)2]4×1.375in.3π[12×π×(1.375in.)2]=0.51693in3.

Substitute 200lbin for My, 0 for z, and 1.1687in4 for Iy in Equation (1).

σA=(200lbin)(0)1.1687in4=0

Find the shear stress (τA) at point A using the relation:

τA=(VQIt)zTρJ (3)

Substitute 20lb for Vz, 0.51693in3 for (QA)z, 1.1687in4 for I, 2×0.125in. for t, 240lbin for T, 1.5in. for ρ, and 2.3374in4 for J in Equation (3).

τA=(20lb)(0.51693in3)(1.1687in4)2(0.125in.)(240lbin)(1.5in.)(2.3374in4)=118.6psi

Sketch the state of stress at point A as shown in Figure 3.

Mechanics of Materials Plus Mastering Engineering with Pearson eText - Access Card Package (10th Edition), Chapter 9, Problem 9.1RP , additional homework tip  3

Refer to Figure 3.

The value of normal stresses are σx=0 and σz=0.

The value of shear stress is τxz=118.6psi.

Find the principal stresses (σ1) and (σ2) at point A:

σ1,2=σx+σz2±(σxσz2)2+τxz2 (4)

Substitute 0 for σx, 0 for σz, and 118.6psi for τxz in Equation (4).

σ1,2=0±0+(118.6)2=0±118.6σ1=0+118.6=118.6psi

σ1119psiσ2=0118.6=118.6psi119psi

Therefore, the principal stresses (σ1) and (σ2) at point A are 119psi_ and 119psi_.

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Chapter 9 Solutions

Mechanics of Materials Plus Mastering Engineering with Pearson eText - Access Card Package (10th Edition)

Ch. 9.3 - Determine the stress components acting on the...Ch. 9.3 - Determine the normal stress and shear stress...Ch. 9.3 - Determine the normal stress and shear stress...Ch. 9.3 - Determine the stress components acting on the...Ch. 9.3 - Determine the stress components acting on the...Ch. 9.3 - Solve Prob.97 using the stress transformation...Ch. 9.3 - Determine the stress components acting on the...Ch. 9.3 - Solve Prob.99 using the stress transformation...Ch. 9.3 - Determine the equivalent state of stress on an...Ch. 9.3 - Determine the equivalent slate of stress on an...Ch. 9.3 - Determine the stress components acting on the...Ch. 9.3 - Determine (a) the principal stresses and (b) the...Ch. 9.3 - The state of stress at a point is shown on the...Ch. 9.3 - Determine the equivalent state of stress on an...Ch. 9.3 - Determine the equivalent state of stress on an...Ch. 9.3 - A point on a thin plate is subjected to the two...Ch. 9.3 - Determine the equivalent state of stress on an...Ch. 9.3 - The stress along two planes at a point is...Ch. 9.3 - The stress acting on two planes at a point is...Ch. 9.3 - The state of stress at a point in a member is...Ch. 9.3 - The grains of wood in the board make an angle of...Ch. 9.3 - The wood beam is subjected to a load of 12 kN. If...Ch. 9.3 - The internal loadings at a section of the beam are...Ch. 9.3 - Solve Prob.925 for point B. 925. The internal...Ch. 9.3 - Solve Prob.925 for point C. 925. The internal...Ch. 9.3 - It is subjected to a torque of 12 kip in. and a...Ch. 9.3 - The bell crank is pinned at A and supported by a...Ch. 9.3 - The beam has a rectangular cross section and is...Ch. 9.3 - A paper tube is formed by rolling a cardboard...Ch. 9.3 - Solve Prob.931 for the normal stress acting...Ch. 9.3 - The 2-in.-diameter drive shaft AB on the...Ch. 9.3 - Determine the principal stresses in the...Ch. 9.3 - The internal loadings at a cross section through...Ch. 9.3 - The internal loadings at a cross section through...Ch. 9.3 - The shaft has a diameter d and is subjected to the...Ch. 9.3 - The steel pipe has an inner diameter of 2.75 in....Ch. 9.3 - Solve Prob.938 for point B, w1ich is located on...Ch. 9.3 - The wide-flange beam is subjected to the 50-kN...Ch. 9.3 - Solve Pro b. 9-40 for point B located on the web...Ch. 9.3 - The box beam is subjected to the 26-kN force that...Ch. 9.3 - Solve Prob.942 for point B. 942. The box beam is...Ch. 9.4 - Use Mohrs circle to determine the normal stress...Ch. 9.4 - Also, find the corresponding orientation of the...Ch. 9.4 - Draw Mohrs circle and determine the principal...Ch. 9.4 - Determine the principal stresses at a point on the...Ch. 9.4 - Determine the principal stresses at point A on the...Ch. 9.4 - Point A is just below the flange.Ch. 9.4 - Solve Prob.9-2 using Mohrs circle. 92. Determine...Ch. 9.4 - Solve Prob.93 using Mohrs circle. 93. Determine...Ch. 9.4 - Solve Prob.96 using Mohrs circle. 96. Determine...Ch. 9.4 - Solve Prob.911 using Mohrs circle. 911. Determine...Ch. 9.4 - Solve Prob.915 using Mohrs circle. 915. The state...Ch. 9.4 - Solve Prob.916 using Mohrs circle. 916. Determine...Ch. 9.4 - Mohrs circle for the state of stress is shown in...Ch. 9.4 - Determine (a) the principal stresses and (b) the...Ch. 9.4 - Determine (a) the principal stresses and (b) the...Ch. 9.4 - Determine the equivalent state of stress if an...Ch. 9.4 - Draw Mohrs circle that describes each of the...Ch. 9.4 - Draw Mohrs circle trial describes each of the...Ch. 9.4 - Determine (a) the principal stresses and (b) the...Ch. 9.4 - Determine (a) the principal stresses and (b) the...Ch. 9.4 - Determine (a) the principal stresses and (b) the...Ch. 9.4 - Determine (a) the principal stresses and (b) the...Ch. 9.4 - Determine (a) the principal stresses and (b) the...Ch. 9.4 - Draw Mohrs circle that describes each of the...Ch. 9.4 - The grains of wood in the board make an angle of...Ch. 9.4 - The post is fixed supported at its base and a...Ch. 9.4 - Determine the principal stresses, the maximum...Ch. 9.4 - The thin-walled pipe has an inner diameter of 0.5...Ch. 9.4 - The frame supports the triangular distributed load...Ch. 9.4 - The frame supports the triangular distributed load...Ch. 9.4 - The rotor shaft of the helicopter is subjected to...Ch. 9.4 - The pedal crank for a bicycle has the cross...Ch. 9.4 - A spherical pressure vessel has an inner radius of...Ch. 9.4 - The cylindrical pressure vessel has an inner...Ch. 9.4 - Determine the normal and shear stresses at point D...Ch. 9.4 - Determine the principal stress at point D, Which...Ch. 9.4 - If the box wrench is subjected to the 50 lb force,...Ch. 9.4 - If the box wrench is subjected to the 50-lb force,...Ch. 9.4 - The post is fixed supported at its base and the...Ch. 9.5 - Draw the three Mohrs circles that describe each of...Ch. 9.5 - Draw the three Mohrs circles that describe the...Ch. 9.5 - Draw the three Mohrs circles that describe the...Ch. 9.5 - Determine the principal stresses and the absolute...Ch. 9.5 - Determine the principal stresses and the absolute...Ch. 9.5 - Determine the principal stresses and the absolute...Ch. 9.5 - Determine the principal stresses and the absolute...Ch. 9.5 - The solid shaft is subjected to a torque, bending...Ch. 9.5 - The frame is subjected to a horizontal force and...Ch. 9.5 - The bolt is fixed to its support at C. If a force...Ch. 9.5 - The bolt is fixed to its support at C. If a force...Ch. 9 - Prob. 9.1RPCh. 9 - The steel pipe has an inner diameter of 2.75 in....Ch. 9 - Determine the equivalent state of stress If an...Ch. 9 - The crane is used to support the 350-lb load....Ch. 9 - Determine the equivalent state of stress on an...Ch. 9 - The propeller shaft of the tugboat is subjected to...Ch. 9 - Determine the principal stresses in the box beam...Ch. 9 - Determine (a) the principal stresses and (b) the...Ch. 9 - Determine the stress components acting on the...
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