Vector Mechanics for Engineers: Statics
Vector Mechanics for Engineers: Statics
12th Edition
ISBN: 9781259977268
Author: Ferdinand P. Beer, E. Russell Johnston Jr., David Mazurek
Publisher: McGraw-Hill Education
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Chapter 2.2, Problem 2.36P

Knowing that the tension in cable BC is 725 N, determine the resultant of the three forces exerted at point B of beam AB.

Chapter 2.2, Problem 2.36P, Knowing that the tension in cable BC is 725 N, determine the resultant of the three forces exerted

Fig. P2.36

Expert Solution & Answer
Check Mark
To determine

The resultant of the three forces shown in figure P2.36.

Answer to Problem 2.36P

The resultant of three forces shown in the figure P2.36 is 226N_.

Explanation of Solution

Figure 1 below shows the three forces acting on point A and their directions.

Vector Mechanics for Engineers: Statics, Chapter 2.2, Problem 2.36P , additional homework tip  1

The figure shows three forces of magnitude 725N , 500N , and 780N along with their directions. Angle a is the angle between the beam AB and the wire BC.

Since these forces make an angle with the axis, they can be resolved into x and y components.

The tension in the wire BC is 725N which has a length of 1160mm. All the three forces exert its resultant force at point marked as point B in figure P2.36.

Write the equation to find the x component of 725N tension in the wire BC.

Fx1=F1cosa (I)

Here, Fx1 is the x component of 725N tension, F1 is tension due to 725N , and a is the angle between beam and direction of tension.

cos is the ratio of the adjacent side and the hypotenuse of a triangle considered in the figure.

Substitute adjacentsidehypotenuse for cosa in equation (I) to get Fx1.

Fx1=F1(adjacentsidehypotenuse) (II)

Write the equation to find the y component of the tension in the wire.

Fy1=F1sina (III)

Here, Fy1 is the y component of tension due to F1.

sina is the ratio of opposite side and the hypotenuse of the triangle considered.

Substitute oppositesidehypotenuse for sina in equation (III) to get Fy1.

Fy1=F1(oppositesidehypotenuse) (IV)

Similarly write the equation to find the x component of the 500N force along the negative x direction.

Fx2=F2cosb (V)

Here, Fx2 is the x component of 500N force , F2 is the magnitude of 500N force, and b is the angle between the 500N force vector and the beam.

cos is the ratio of the adjacent side and the hypotenuse of a triangle considered in the figure.

Substitute adjacentsidehypotenuse for cosb in equation (V) to get Fx2.

Fx2=F2cos(adjacentsidehypotenuse) (VI)

Write the equation to find the y component of 500N force along the negative y direction.

Fy2=F2sinb (VII)

Here, Fy2 is the y component of 500N force.

sinb is the ratio of opposite side and the hypotenuse of the triangle considered.

Substitute oppositesidehypotenuse for sinb in equation (VII) to get Fy2.

Fy2=F2(oppositesidehypotenuse) (VIII)

Write the equation to find the x component of the 780N force along the positive x direction.

Fx3=F3cosc (IX)

Here, Fx3 is the x component of the 780N force, F3 is the magnitude of the 780N force, c is the angle between 780N force vector and the beam.

cos is the ratio of the adjacent side and the hypotenuse of a triangle considered in the figure.

Substitute adjacentsidehypotenuse for cosc in equation (IX) to get Fx3.

Fx3=F3(adjacentsidehypotenuse) (X)

Write the equation to find the y component of 780N force along the negative y direction.

Fy3=F3sinc (XI)

Here, Fy3 is the y component of 780N force.

sinc is the ratio of opposite side and the hypotenuse of the triangle considered.

Substitute oppositesidehypotenuse for c in equation (XI) to get Fy.

Fy3=F3(oppositesidehypotenuse) (XII)

Let Rx and Ry be the x and y component of the resultant forces and R be the resultant force vector.

Write the equation to find the resultant of all the three x components.

Rx=Fx1+Fx2+Fx3=Fx (XIII)

Here, Rx is the resultant of all the three x components of force, and Fx is the sum of all the three x components of forces.

Write the equation to find the resultant of all the three y components.

Ry=Fy1+Fy2+Fy3=Fy (XIV)

Here, Fy is the sum of all the y components of three forces acting on point B.

Write the general expression of a vector with Rx and Ry as components.

R=Rxi^+Ryj^ (XV)

Express the vectors R,Rx,andRy diagrammatically as shown in figure 1. α is the angle separating the components Rx and the resultant vector R.

Vector Mechanics for Engineers: Statics, Chapter 2.2, Problem 2.36P , additional homework tip  2

Write the equation to find the resultant of vectors Rx and Ry.

R=Rx2+Ry2 (XVI)

Here, R is the resultant force, Rx is the resultant x component of force, and Ry is the resultant of y component of force.

Write the equation to find the tangent of angle α.

tanα=RyRx (XVII)

Here, α is the angle between component Rx, and R , Ry is the y component of the resultant force, and Rx is the x component of the resultant force.

Rewrite equation (XII) to get α.

α=tan1(RyRx) (XVIII)

Conclusion:

Substitute 725N for F1, 840mm for adjacentside  and 1160mm for hypotenuse in equation (II) to get Fx1.

Fx1=(725N)840mm1160mm=525N

Substitute 725N for F1 ,800mm for oppositeside  and 1160mm for hypotenuse in equation (IV) to get Fy1.

Fy1=(725N)800mm1160mm=500N

Substitute 500N for F2 , 3mm for adjacentside and 5mm for hypotenuse in equation (VI)  to get Fx2.

Fx2=(500N)3mm5mm=300N

Substitute 500N for F2 , 5mm for hypotenuse and 4mm for oppositeside in equation (VIII) to get Fy2.

Fy2=(500N)4mm5mm=400N

Substitute 780N for F3 , 12mm for adjacentside and 13mm for hypotenuse in equation (X) to get Fx3.

Fx3=(780N)12mm13mm=720N

Substitute 780N for F3 , 5mm for oppositeside and 13mm for hypotenuse in equation (XII) to get Fy3.

Fy3=(780N)5mm13mm=300N

Substitute 525N, 300N , and 720N for Fx in equation (XIII) to get Rx

Rx=525N-300N+720N=105N

Substitute 500N , 400N , and 300N for Fy in equation (XIV) to get Ry.

Ry=500N400N300N=200N

Substitute 105N for Rx and 200N for Ry in equation (XV) to get R.

R=(105N)i^+(200N)j^

Substitute 105N for Rx and 200N for Ry in equation (XVI) to get R.

R=(105N)2+(200N)2=225.89N

Substitute 200N for Ry and 105N for Rx in equation (XIII) to get α.

α=tan1(200N105N)=62.3°

Therefore, the resultant of the three forces acting at point B shown in figure P2.36 is 226N_.

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Chapter 2 Solutions

Vector Mechanics for Engineers: Statics

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