Calculate the support reactions for the given structures.

Question

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Answer 1

Question

Chapter 3, Problem 41P

To determine

Calculate the support reactions for the given structures.

Expert Solution & Answer

Answer to Problem 41P

The horizontal reaction at A is Ax=15 k→_.

The vertical reaction at A is Ay=15 k↑_.

The moment at A is MA=300 k-ft_ acting in the clockwise direction.

The horizontal reaction at B is Bx=15 k→_.

The vertical reaction at B is By=15 k↓_.

The moment at B is MB=300 k-ft_ acting in the clockwise direction.

Explanation of Solution

Given information:

The structure is given in the Figure.

Apply the sign conventions for calculating reaction 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 (∑Mat a point=0), consider the clockwise moment as negative and the counter clockwise moment as positive.

Calculation:

Let Ax, Ay, and MA be the horizontal reaction, vertical reaction, and moment at the fixed support A.

Let Bx, By, and MB be the horizontal reaction, vertical reaction, and moment at the fixed support B.

Sketch the free body diagram of the given structure as shown in Figure 1.

Structural Analysis, Si Edition, Chapter 3, Problem 41P

Use equilibrium equations:

Find the forces at the internal hinges C and D:

Consider the free body diagram of the portion CED.

Summation of moments about D is equal to 0.

∑MD=0−Cy(40)+30(20)=0Cy=15 k

For the member CE, the summation of moments about E is equal to 0.

∑MECE=0−Cy(20)+Cx(20)=0

Substitute 15 k for Cy.

−15(20)+Cx(20)=0Cx=15 k

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

+→∑Fx=0Cx−30+Dx=0

Substitute 15 k for Cx.

15−30+Dx=0Dx=15 k

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

+↑∑Fy=0Cy−Dy=0

Substitute 15 k for Cy.

15−Dy=0Dy=15 k

Find the reactions at the support A:

Consider the equilibrium of the portion AC.

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

+→∑Fx=0Ax−Cx=0

Substitute 15 k for Cx.

Ax−15=0Ax=15 k→

Therefore, the horizontal reaction at A is Ax=15 k→_.

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

+↑∑Fy=0Ay−Cy=0

Substitute 15 k for Cy.

Ay−15=0Ay=15 k↑

Therefore, the vertical reaction at A is Ay=15 k↑_.

Summation of moments about A is equal to 0.

∑MA=0−MA+Cx(20)=0

Substitute 15 k for Cx.

−MA+15(20)=0MA=300 k-ft

Therefore, the moment at A is MA=300 k-ft_ acting in the clockwise direction.

Find the reactions at the support B:

Consider the equilibrium of the portion BD.

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

+→∑Fx=0Bx−Dx=0

Substitute 15 k for Dx.

Bx−15=0Bx=15 k→

Therefore, the horizontal reaction at B is Bx=15 k→_.

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

+↑∑Fy=0−By+Dy=0

Substitute 15 k for Dy.

−By+15=0By=15 k↓

Therefore, the vertical reaction at B is By=15 k↓_.

Summation of moments about B is equal to 0.

∑MB=0−MB+Dx(20)=0

Substitute 15 k for Dx.

−MB+15(20)=0MB=300 k-ft

Therefore, the moment at B is MB=300 k-ft_ acting in the clockwise direction.

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Answer 2

Question

Chapter 3, Problem 41P

To determine

Calculate the support reactions for the given structures.

Expert Solution & Answer

Answer to Problem 41P

The horizontal reaction at A is Ax=15 k→_.

The vertical reaction at A is Ay=15 k↑_.

The moment at A is MA=300 k-ft_ acting in the clockwise direction.

The horizontal reaction at B is Bx=15 k→_.

The vertical reaction at B is By=15 k↓_.

The moment at B is MB=300 k-ft_ acting in the clockwise direction.

Explanation of Solution

Given information:

The structure is given in the Figure.

Apply the sign conventions for calculating reaction 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 (∑Mat a point=0), consider the clockwise moment as negative and the counter clockwise moment as positive.

Calculation:

Let Ax, Ay, and MA be the horizontal reaction, vertical reaction, and moment at the fixed support A.

Let Bx, By, and MB be the horizontal reaction, vertical reaction, and moment at the fixed support B.

Sketch the free body diagram of the given structure as shown in Figure 1.

Structural Analysis, Si Edition, Chapter 3, Problem 41P

Use equilibrium equations:

Find the forces at the internal hinges C and D:

Consider the free body diagram of the portion CED.

Summation of moments about D is equal to 0.

∑MD=0−Cy(40)+30(20)=0Cy=15 k

For the member CE, the summation of moments about E is equal to 0.

∑MECE=0−Cy(20)+Cx(20)=0

Substitute 15 k for Cy.

−15(20)+Cx(20)=0Cx=15 k

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

+→∑Fx=0Cx−30+Dx=0

Substitute 15 k for Cx.

15−30+Dx=0Dx=15 k

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

+↑∑Fy=0Cy−Dy=0

Substitute 15 k for Cy.

15−Dy=0Dy=15 k

Find the reactions at the support A:

Consider the equilibrium of the portion AC.

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

+→∑Fx=0Ax−Cx=0

Substitute 15 k for Cx.

Ax−15=0Ax=15 k→

Therefore, the horizontal reaction at A is Ax=15 k→_.

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

+↑∑Fy=0Ay−Cy=0

Substitute 15 k for Cy.

Ay−15=0Ay=15 k↑

Therefore, the vertical reaction at A is Ay=15 k↑_.

Summation of moments about A is equal to 0.

∑MA=0−MA+Cx(20)=0

Substitute 15 k for Cx.

−MA+15(20)=0MA=300 k-ft

Therefore, the moment at A is MA=300 k-ft_ acting in the clockwise direction.

Find the reactions at the support B:

Consider the equilibrium of the portion BD.

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

+→∑Fx=0Bx−Dx=0

Substitute 15 k for Dx.

Bx−15=0Bx=15 k→

Therefore, the horizontal reaction at B is Bx=15 k→_.

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

+↑∑Fy=0−By+Dy=0

Substitute 15 k for Dy.

−By+15=0By=15 k↓

Therefore, the vertical reaction at B is By=15 k↓_.

Summation of moments about B is equal to 0.

∑MB=0−MB+Dx(20)=0

Substitute 15 k for Dx.

−MB+15(20)=0MB=300 k-ft

Therefore, the moment at B is MB=300 k-ft_ acting in the clockwise direction.

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Answer 3

Question

Chapter 3, Problem 41P

To determine

Calculate the support reactions for the given structures.

Expert Solution & Answer

Answer to Problem 41P

The horizontal reaction at A is Ax=15 k→_.

The vertical reaction at A is Ay=15 k↑_.

The moment at A is MA=300 k-ft_ acting in the clockwise direction.

The horizontal reaction at B is Bx=15 k→_.

The vertical reaction at B is By=15 k↓_.

The moment at B is MB=300 k-ft_ acting in the clockwise direction.

Explanation of Solution

Given information:

The structure is given in the Figure.

Apply the sign conventions for calculating reaction 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 (∑Mat a point=0), consider the clockwise moment as negative and the counter clockwise moment as positive.

Calculation:

Let Ax, Ay, and MA be the horizontal reaction, vertical reaction, and moment at the fixed support A.

Let Bx, By, and MB be the horizontal reaction, vertical reaction, and moment at the fixed support B.

Sketch the free body diagram of the given structure as shown in Figure 1.

Structural Analysis, Si Edition, Chapter 3, Problem 41P

Use equilibrium equations:

Find the forces at the internal hinges C and D:

Consider the free body diagram of the portion CED.

Summation of moments about D is equal to 0.

∑MD=0−Cy(40)+30(20)=0Cy=15 k

For the member CE, the summation of moments about E is equal to 0.

∑MECE=0−Cy(20)+Cx(20)=0

Substitute 15 k for Cy.

−15(20)+Cx(20)=0Cx=15 k

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

+→∑Fx=0Cx−30+Dx=0

Substitute 15 k for Cx.

15−30+Dx=0Dx=15 k

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

+↑∑Fy=0Cy−Dy=0

Substitute 15 k for Cy.

15−Dy=0Dy=15 k

Find the reactions at the support A:

Consider the equilibrium of the portion AC.

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

+→∑Fx=0Ax−Cx=0

Substitute 15 k for Cx.

Ax−15=0Ax=15 k→

Therefore, the horizontal reaction at A is Ax=15 k→_.

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

+↑∑Fy=0Ay−Cy=0

Substitute 15 k for Cy.

Ay−15=0Ay=15 k↑

Therefore, the vertical reaction at A is Ay=15 k↑_.

Summation of moments about A is equal to 0.

∑MA=0−MA+Cx(20)=0

Substitute 15 k for Cx.

−MA+15(20)=0MA=300 k-ft

Therefore, the moment at A is MA=300 k-ft_ acting in the clockwise direction.

Find the reactions at the support B:

Consider the equilibrium of the portion BD.

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

+→∑Fx=0Bx−Dx=0

Substitute 15 k for Dx.

Bx−15=0Bx=15 k→

Therefore, the horizontal reaction at B is Bx=15 k→_.

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

+↑∑Fy=0−By+Dy=0

Substitute 15 k for Dy.

−By+15=0By=15 k↓

Therefore, the vertical reaction at B is By=15 k↓_.

Summation of moments about B is equal to 0.

∑MB=0−MB+Dx(20)=0

Substitute 15 k for Dx.

−MB+15(20)=0MB=300 k-ft

Therefore, the moment at B is MB=300 k-ft_ acting in the clockwise direction.

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Answer 4

Question

Chapter 3, Problem 41P

To determine

Calculate the support reactions for the given structures.

Expert Solution & Answer

Answer to Problem 41P

The horizontal reaction at A is Ax=15 k→_.

The vertical reaction at A is Ay=15 k↑_.

The moment at A is MA=300 k-ft_ acting in the clockwise direction.

The horizontal reaction at B is Bx=15 k→_.

The vertical reaction at B is By=15 k↓_.

The moment at B is MB=300 k-ft_ acting in the clockwise direction.

Explanation of Solution

Given information:

The structure is given in the Figure.

Apply the sign conventions for calculating reaction 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 (∑Mat a point=0), consider the clockwise moment as negative and the counter clockwise moment as positive.

Calculation:

Let Ax, Ay, and MA be the horizontal reaction, vertical reaction, and moment at the fixed support A.

Let Bx, By, and MB be the horizontal reaction, vertical reaction, and moment at the fixed support B.

Sketch the free body diagram of the given structure as shown in Figure 1.

Structural Analysis, Si Edition, Chapter 3, Problem 41P

Use equilibrium equations:

Find the forces at the internal hinges C and D:

Consider the free body diagram of the portion CED.

Summation of moments about D is equal to 0.

∑MD=0−Cy(40)+30(20)=0Cy=15 k

For the member CE, the summation of moments about E is equal to 0.

∑MECE=0−Cy(20)+Cx(20)=0

Substitute 15 k for Cy.

−15(20)+Cx(20)=0Cx=15 k

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

+→∑Fx=0Cx−30+Dx=0

Substitute 15 k for Cx.

15−30+Dx=0Dx=15 k

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

+↑∑Fy=0Cy−Dy=0

Substitute 15 k for Cy.

15−Dy=0Dy=15 k

Find the reactions at the support A:

Consider the equilibrium of the portion AC.

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

+→∑Fx=0Ax−Cx=0

Substitute 15 k for Cx.

Ax−15=0Ax=15 k→

Therefore, the horizontal reaction at A is Ax=15 k→_.

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

+↑∑Fy=0Ay−Cy=0

Substitute 15 k for Cy.

Ay−15=0Ay=15 k↑

Therefore, the vertical reaction at A is Ay=15 k↑_.

Summation of moments about A is equal to 0.

∑MA=0−MA+Cx(20)=0

Substitute 15 k for Cx.

−MA+15(20)=0MA=300 k-ft

Therefore, the moment at A is MA=300 k-ft_ acting in the clockwise direction.

Find the reactions at the support B:

Consider the equilibrium of the portion BD.

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

+→∑Fx=0Bx−Dx=0

Substitute 15 k for Dx.

Bx−15=0Bx=15 k→

Therefore, the horizontal reaction at B is Bx=15 k→_.

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

+↑∑Fy=0−By+Dy=0

Substitute 15 k for Dy.

−By+15=0By=15 k↓

Therefore, the vertical reaction at B is By=15 k↓_.

Summation of moments about B is equal to 0.

∑MB=0−MB+Dx(20)=0

Substitute 15 k for Dx.

−MB+15(20)=0MB=300 k-ft

Therefore, the moment at B is MB=300 k-ft_ acting in the clockwise direction.

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Answer 5

Chapter 3, Problem 41P

To determine

Calculate the support reactions for the given structures.

Expert Solution & Answer

Answer to Problem 41P

The horizontal reaction at A is Ax=15 k→_.

The vertical reaction at A is Ay=15 k↑_.

The moment at A is MA=300 k-ft_ acting in the clockwise direction.

The horizontal reaction at B is Bx=15 k→_.

The vertical reaction at B is By=15 k↓_.

The moment at B is MB=300 k-ft_ acting in the clockwise direction.

Explanation of Solution

Given information:

The structure is given in the Figure.

Apply the sign conventions for calculating reaction 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 (∑Mat a point=0), consider the clockwise moment as negative and the counter clockwise moment as positive.

Calculation:

Let Ax, Ay, and MA be the horizontal reaction, vertical reaction, and moment at the fixed support A.

Let Bx, By, and MB be the horizontal reaction, vertical reaction, and moment at the fixed support B.

Sketch the free body diagram of the given structure as shown in Figure 1.

Structural Analysis, Si Edition, Chapter 3, Problem 41P

Use equilibrium equations:

Find the forces at the internal hinges C and D:

Consider the free body diagram of the portion CED.

Summation of moments about D is equal to 0.

∑MD=0−Cy(40)+30(20)=0Cy=15 k

For the member CE, the summation of moments about E is equal to 0.

∑MECE=0−Cy(20)+Cx(20)=0

Substitute 15 k for Cy.

−15(20)+Cx(20)=0Cx=15 k

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

+→∑Fx=0Cx−30+Dx=0

Substitute 15 k for Cx.

15−30+Dx=0Dx=15 k

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

+↑∑Fy=0Cy−Dy=0

Substitute 15 k for Cy.

15−Dy=0Dy=15 k

Find the reactions at the support A:

Consider the equilibrium of the portion AC.

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

+→∑Fx=0Ax−Cx=0

Substitute 15 k for Cx.

Ax−15=0Ax=15 k→

Therefore, the horizontal reaction at A is Ax=15 k→_.

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

+↑∑Fy=0Ay−Cy=0

Substitute 15 k for Cy.

Ay−15=0Ay=15 k↑

Therefore, the vertical reaction at A is Ay=15 k↑_.

Summation of moments about A is equal to 0.

∑MA=0−MA+Cx(20)=0

Substitute 15 k for Cx.

−MA+15(20)=0MA=300 k-ft

Therefore, the moment at A is MA=300 k-ft_ acting in the clockwise direction.

Find the reactions at the support B:

Consider the equilibrium of the portion BD.

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

+→∑Fx=0Bx−Dx=0

Substitute 15 k for Dx.

Bx−15=0Bx=15 k→

Therefore, the horizontal reaction at B is Bx=15 k→_.

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

+↑∑Fy=0−By+Dy=0

Substitute 15 k for Dy.

−By+15=0By=15 k↓

Therefore, the vertical reaction at B is By=15 k↓_.

Summation of moments about B is equal to 0.

∑MB=0−MB+Dx(20)=0

Substitute 15 k for Dx.

−MB+15(20)=0MB=300 k-ft

Therefore, the moment at B is MB=300 k-ft_ acting in the clockwise direction.

Answer 6

Chapter 3, Problem 41P

To determine

Calculate the support reactions for the given structures.

Expert Solution & Answer

Answer to Problem 41P

The horizontal reaction at A is Ax=15 k→_.

The vertical reaction at A is Ay=15 k↑_.

The moment at A is MA=300 k-ft_ acting in the clockwise direction.

The horizontal reaction at B is Bx=15 k→_.

The vertical reaction at B is By=15 k↓_.

The moment at B is MB=300 k-ft_ acting in the clockwise direction.

Explanation of Solution

Given information:

The structure is given in the Figure.

Apply the sign conventions for calculating reaction 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 (∑Mat a point=0), consider the clockwise moment as negative and the counter clockwise moment as positive.

Calculation:

Let Ax, Ay, and MA be the horizontal reaction, vertical reaction, and moment at the fixed support A.

Let Bx, By, and MB be the horizontal reaction, vertical reaction, and moment at the fixed support B.

Sketch the free body diagram of the given structure as shown in Figure 1.

Structural Analysis, Si Edition, Chapter 3, Problem 41P

Use equilibrium equations:

Find the forces at the internal hinges C and D:

Consider the free body diagram of the portion CED.

Summation of moments about D is equal to 0.

∑MD=0−Cy(40)+30(20)=0Cy=15 k

For the member CE, the summation of moments about E is equal to 0.

∑MECE=0−Cy(20)+Cx(20)=0

Substitute 15 k for Cy.

−15(20)+Cx(20)=0Cx=15 k

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

+→∑Fx=0Cx−30+Dx=0

Substitute 15 k for Cx.

15−30+Dx=0Dx=15 k

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

+↑∑Fy=0Cy−Dy=0

Substitute 15 k for Cy.

15−Dy=0Dy=15 k

Find the reactions at the support A:

Consider the equilibrium of the portion AC.

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

+→∑Fx=0Ax−Cx=0

Substitute 15 k for Cx.

Ax−15=0Ax=15 k→

Therefore, the horizontal reaction at A is Ax=15 k→_.

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

+↑∑Fy=0Ay−Cy=0

Substitute 15 k for Cy.

Ay−15=0Ay=15 k↑

Therefore, the vertical reaction at A is Ay=15 k↑_.

Summation of moments about A is equal to 0.

∑MA=0−MA+Cx(20)=0

Substitute 15 k for Cx.

−MA+15(20)=0MA=300 k-ft

Therefore, the moment at A is MA=300 k-ft_ acting in the clockwise direction.

Find the reactions at the support B:

Consider the equilibrium of the portion BD.

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

+→∑Fx=0Bx−Dx=0

Substitute 15 k for Dx.

Bx−15=0Bx=15 k→

Therefore, the horizontal reaction at B is Bx=15 k→_.

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

+↑∑Fy=0−By+Dy=0

Substitute 15 k for Dy.

−By+15=0By=15 k↓

Therefore, the vertical reaction at B is By=15 k↓_.

Summation of moments about B is equal to 0.

∑MB=0−MB+Dx(20)=0

Substitute 15 k for Dx.

−MB+15(20)=0MB=300 k-ft

Therefore, the moment at B is MB=300 k-ft_ acting in the clockwise direction.

Answer 7

Chapter 3, Problem 41P

To determine

Calculate the support reactions for the given structures.

Answer 8

Expert Solution & Answer

Answer to Problem 41P

The horizontal reaction at A is Ax=15 k→_.

The vertical reaction at A is Ay=15 k↑_.

The moment at A is MA=300 k-ft_ acting in the clockwise direction.

The horizontal reaction at B is Bx=15 k→_.

The vertical reaction at B is By=15 k↓_.

The moment at B is MB=300 k-ft_ acting in the clockwise direction.

Answer 9

Expert Solution & Answer

Answer 10

Expert Solution & Answer

Answer 11

Explanation of Solution

Given information:

The structure is given in the Figure.

Apply the sign conventions for calculating reaction 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 (∑Mat a point=0), consider the clockwise moment as negative and the counter clockwise moment as positive.

Calculation:

Let Ax, Ay, and MA be the horizontal reaction, vertical reaction, and moment at the fixed support A.

Let Bx, By, and MB be the horizontal reaction, vertical reaction, and moment at the fixed support B.

Sketch the free body diagram of the given structure as shown in Figure 1.

Structural Analysis, Si Edition, Chapter 3, Problem 41P

Use equilibrium equations:

Find the forces at the internal hinges C and D:

Consider the free body diagram of the portion CED.

Summation of moments about D is equal to 0.

∑MD=0−Cy(40)+30(20)=0Cy=15 k

For the member CE, the summation of moments about E is equal to 0.

∑MECE=0−Cy(20)+Cx(20)=0

Substitute 15 k for Cy.

−15(20)+Cx(20)=0Cx=15 k

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

+→∑Fx=0Cx−30+Dx=0

Substitute 15 k for Cx.

15−30+Dx=0Dx=15 k

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

+↑∑Fy=0Cy−Dy=0

Substitute 15 k for Cy.

15−Dy=0Dy=15 k

Find the reactions at the support A:

Consider the equilibrium of the portion AC.

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

+→∑Fx=0Ax−Cx=0

Substitute 15 k for Cx.

Ax−15=0Ax=15 k→

Therefore, the horizontal reaction at A is Ax=15 k→_.

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

+↑∑Fy=0Ay−Cy=0

Substitute 15 k for Cy.

Ay−15=0Ay=15 k↑

Therefore, the vertical reaction at A is Ay=15 k↑_.

Summation of moments about A is equal to 0.

∑MA=0−MA+Cx(20)=0

Substitute 15 k for Cx.

−MA+15(20)=0MA=300 k-ft

Therefore, the moment at A is MA=300 k-ft_ acting in the clockwise direction.

Find the reactions at the support B:

Consider the equilibrium of the portion BD.

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

+→∑Fx=0Bx−Dx=0

Substitute 15 k for Dx.

Bx−15=0Bx=15 k→

Therefore, the horizontal reaction at B is Bx=15 k→_.

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

+↑∑Fy=0−By+Dy=0

Substitute 15 k for Dy.

−By+15=0By=15 k↓

Therefore, the vertical reaction at B is By=15 k↓_.

Summation of moments about B is equal to 0.

∑MB=0−MB+Dx(20)=0

Substitute 15 k for Dx.

−MB+15(20)=0MB=300 k-ft

Therefore, the moment at B is MB=300 k-ft_ acting in the clockwise direction.

Answer 12

Ch. 3 - Prob. 1P Ch. 3 - Prob. 2P Ch. 3 - Prob. 3P Ch. 3 - Prob. 4P Ch. 3 - Prob. 5P Ch. 3 - Prob. 6P Ch. 3 - Prob. 7P Ch. 3 - Prob. 8P Ch. 3 - Prob. 9P Ch. 3 - Prob. 10P

Calculate the support reactions for the given structures.

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Calculate the support reactions for the given structures.

Answer to Problem 41P

Explanation of Solution

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