Connect 1 Semester Access Card for Vector Mechanics for Engineers: Statics and Dynamics
Connect 1 Semester Access Card for Vector Mechanics for Engineers: Statics and Dynamics
11th Edition
ISBN: 9781259639272
Author: Ferdinand P. Beer, E. Russell Johnston Jr., David Mazurek, Phillip J. Cornwell, Brian Self
Publisher: McGraw-Hill Education
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Chapter 2.5, Problem 2.112P

A transmission tower is held by three guy wires attached to a pin at A and anchored by bolts at B, C, and D. If the tension in wire AC is 590 lb, determine the vertical force P exerted by the tower on the pin at

Expert Solution & Answer
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To determine

The vertical force P exerted by the tower on the pin at A , if the tension in the wire AC is 590lb.

Answer to Problem 2.112P

The vertical force P exerted by the tower on the pin at A is 2000lb_.

Explanation of Solution

Free body diagram at A is shown in figure1.

Connect 1 Semester Access Card for Vector Mechanics for Engineers: Statics and Dynamics, Chapter 2.5, Problem 2.112P , additional homework tip  1

Here, TAB is the magnitude of tension in cable AB, TAC is the magnitude of tension in cable AC, TAD is the magnitude of tension in the cable AD , p is the magnitude of force P exerted by the tower on the pin at A.

The tension in the cable AB is 840lb.

The sketch of plate supported by three cables is shown in figure2.

Connect 1 Semester Access Card for Vector Mechanics for Engineers: Statics and Dynamics, Chapter 2.5, Problem 2.112P , additional homework tip  2

Let TAB, TAC,TAD and P are the tension vector in cable AB, AC, AD and force exerted by the tower at A in the upward direction

Let i , j and k are the unit vectors along the of x,yandz direction.

Write the equation of vector distance AB.

AB=(x2x1)i+(y2y1)j+(z2z1)k (I)

Here, AB is the vector distance of the cable AB, the variables x1,y1and z1 are the coordinates of point A and x2,y2and z2 are the coordinates of point B.

Write the vector distance of the cable AC.

AC=(x3x1)i+(y3y1)j+(z3z1)k (II)

Here, AC is the vector distance of the cable AC, the variables x1,y1and z1 are the coordinates of point A and x3,y3and z3 are the coordinates of point C.

Write the vector distance of the cable AD.

AD=(x4x1)i+(y4y1)j+(z4z1)k (III)

Here, AD is the vector distance of the cable AD, the variables x1,y1and z1 are the coordinates of point A and x4,y4and z4 are the coordinates of point D.

Write the equation of tension in the cable AB.

TAB=λABTAB (IV)

Here, TAB is the tension in the cable AB , TAB is the magnitude of the tension in the cable AB and λAB is the unit vector in the direction of AB.

Write the equation of λAB.

λAB=ABAB (V)

Write the equation of tension in the cable AC.

TAC=λACTAC (VI)

Here, TAC is the tension in the cable AC , TAC is the magnitude of the tension in the cable AC and λAC is the unit vector in the direction of AC.

Write the equation of λAC.

λAC=ACAC (VII)

Write the equation of tension in the cable AD.

TAD=λADTAD (VIII)

Here, TAD is the tension in the cable AD , TAD is the magnitude of the tension in the cable AD and λAD is the unit vector in the direction of AD.

Write the equation of λAD.

λAD=ADAD (IX)

Write the equation of force exerting at point A along y direction.

P=Pj (X)

Here, P is the force exerted at by the tower at pin at point A.

Write the equilibrium condition for the forces at A.

F=0

Here, F is the force

The above equation implies that at equilibrium, total force acting on the cable at A is zero.

Refer figure 2 and write the equation of equilibrium of forces at A.

TAB+TAC+TAD+P=0

Conclusion:

Substitute 0ft for x1 , 100ft for y1 , 0ft for z1 , 20ft for x2 , 0ft for y2 and 25ft for z2 in equation (I) to get AB.

AB=(20ft)i(100ft)j+(25ft)k

Calculate the magnitude of AB.

AB=(20ft)2+(100ft)2+(25ft)2=105ft

Substitute 0ft for x1 , 100ft for y1 , 0ft for z1 , 60ft for x3 , 0ft for y3 and 25ft for z3 in equation (II) to get AC.

AC=(60ft)i(100ft)j+(18ft)k

Calculate the magnitude of AC.

AC=(60ft)2+(100ft)2+(18ft)2=118ft

Substitute 0ft for x1 , 100ft for y1 , 0ft for z1 , 20ft for x4 , 0ft for y4 and 74ft for z4 in equation (III) to get AD.

AD=(20ft)i(100ft)j(74ft)k

Calculate the magnitude of AD.

AD=(20ft)2+(100ft)2+(74ft)2=126ft

Substitute (20ft)i(100ft)j+(25ft)k for AB and 105ft for AB in equation (V) to get λAB.

λAB=(20ft)i(100ft)j+(25ft)k105ft=421i2021j+521k

Substitute 421i2021j+521k for λAB in equation (IV) to get TAB.

TAB=(421i2021j+521k)TAB

Substitute (60ft)i(100ft)j+(18ft)k for AC and 118ft for AC in equation
(VII) to get λAC.

λAC=(60ft)i(100ft)j+(18ft)k118ft=3059i5059j+959k

Substitute 3059i5059j+959k for λAC in equation (VI) to get TAC.

TAC=(3059i5059j+959k)TAC

Substitute (20ft)i(100ft)j(74ft)k for AD and 126ft for AD in equation (IX) to get λAD.

λAD=(20ft)i(100ft)j(74ft)k126ft=1063i5063j3763k

Substitute 1063i5063j3763k for λAD in equation (VIII) to get TAD.

TAD=(1063i5063j3763k)TAD

Substitute (421i2021j+521k)TAB for TAB , (3059i5059j+959k)TAC for TAC , (1063i5063j3763k)TAD, Pj for P in the in equation (XI) to get force P exerted at point A.

(421i2021j+521k)TAB+(3059i5059j+959k)TAC+(1063i5063j3763k)TAD+Pj=0(421TAB+3059TAC1063TAD)i+(2021TAB5059TAC5063TAD+P)j+(+521TAB+959TAC3763TAD)k=0

Since total force is zero. Equate force along each direction as zero.

421TAB+3059TAC1063TAD=0 (XII)

2021TAB5059TAC5063TAD+P=0 (XIII)

+521TAB+959TAC3763TAD=0 (XIV)

Substitute 590lb for TAC in equation (XII) and (XIV) to modify the equation.

421TAB+3059(590lb)1063TAD=0

421TAB+300lb1063TAD=0 (XV)

+521TAB+959(590lb)3763TAD=0

+521TAB+90lb3763TAD=0 (XVI)

Multiply equation (XV) by 5 and XVI by 10 and add to get TAC.

2021TAB+1500lb5063TAD+2021TAB+360lb14863TAD=01860lb19863TAD=0TAD=591.82lb

Substitute 591.82lb for TAD in equation (XVI) to get TAB.

+521TAB+90lb3763(591.82lb)=0TAB=1081.82lb

Substitute 1081.82lb for TAB, 590lb for TAC and 591.82lb for TAD in equation (XIII) to get P.

2021(1081.82lb)5059(590lb)5063(591.82lb)+P=0P=2000lb

Therefore, the force P exerted by the tower at the pin positioned at A is equal to 2000lb_.

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Chapter 2 Solutions

Connect 1 Semester Access Card for Vector Mechanics for Engineers: Statics and Dynamics

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