VECTOR MECHANIC
VECTOR MECHANIC
12th Edition
ISBN: 9781264095032
Author: BEER
Publisher: MCGRAW-HILL HIGHER EDUCATION
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Chapter 7.5, Problem 7.147P
To determine

Find the distance a.

Expert Solution & Answer
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Answer to Problem 7.147P

The distance a is 3.50ft_.

Explanation of Solution

Given information:

The length of the cable AB is L=10ft.

The value of angle θ is 30°.

The collar at A is slides freely and the collar at B is prevented from the moving.

Calculation:

Show the free-body diagram of the cable assembly as in Figure 1.

VECTOR MECHANIC, Chapter 7.5, Problem 7.147P

Refer the Equation 7.16 in the textbook.

Write the equation of the catenary cable as follows;

y=ccoshxc

Differentiate the equation with x;

dydx=sinhxc

The slope at point A is;

tanθ=|dydx|A=sinhxAcxAc=sinh(tan(90°θ))xA=csinh1(tan(90°θ)) (1)

The length of the portion AC is as follows:

AC=csinh(xAc)

The length of the portion CB is as follows:

CB=csinh(xBc)

Find the distance xB using the relation.

L=AC+CB

Substitute 10 ft for L, csinh(xAc) for AC, and csinh(xBc) for CB.

10=csinh(xAc)+csinh(xBc)csinh(xBc)=10csinh(xAc)sinh(xBc)=10csinh(xAc)xB=csinh1[10csinh(xAc)] (2)

Find the distance (yA) using the relation.

yA=ccosh(xAc) (3)

Find the distance (yB) using the relation.

yB=ccosh(xBc) (4)

Consider the triangle ABD;

Find the value of tanθ using the relation.

tanθ=OppositesideAdjacentside=yByAxB+xA (5)

Find the distance a using the relation.

a=yByA (6)

Use the trial and error procedure to find the value of a.

Consider the value of c and for the given value of θ=30°, find the angle θ in the equation (5). The calculated value of angle θ and the given value of θ=30° should be equal.

Trial 1:

Consider a trial value of 1.60 ft for c.

c=1.60ft

Substitute 1.60 ft for c and 30° for θ in Equation (1).

xA=1.60×sinh1(tan(90°30°))=2.107ft

Substitute 1.60 ft for c and 2.107 ft for xA in Equation (2).

xB=1.60×sinh1[101.60sinh(2.1071.60)]=3.541ft

Substitute 1.60 ft for c and 2.107 ft for xA in Equation (3).

yA=1.60×cosh(2.1071.60)=3.20ft

Substitute 1.60 ft for c and 3.541 ft for xB in Equation (4).

yB=1.60×cosh(3.5411.60)=7.404ft

Substitute 2.107 ft for xA, 3.541 ft for xB, 3.20 ft for yA, and 7.404 ft for yB in Equation (5).

tanθ=7.4043.203.541+2.107θ=36.658°

The calculated value of θ=36.658° is not equal to the given value of θ=30°

Trial 2:

Consider a trial value of 1.70 ft for c.

c=1.70ft

Substitute 1.70 ft for c and 30° for θ in Equation (1).

xA=1.70×sinh1(tan(90°30°))=2.239ft

Substitute 1.70 ft for c and 2.239 ft for xA in Equation (2).

xB=1.70×sinh1[101.70sinh(2.2391.70)]=3.622ft

Substitute 1.70 ft for c and 2.239 ft for xA in Equation (3).

yA=1.70×cosh(2.2391.70)=3.40ft

Substitute 1.70 ft for c and 3.622 ft for xB in Equation (4).

yB=1.70×cosh(3.6221.70)=7.257ft

Substitute 2.239 ft for xA, 3.622 ft for xB, 3.40 ft for yA, and 7.257 ft for yB in Equation (5).

tanθ=7.2573.403.622+2.239θ=33.352°

The calculated value of θ=33.352° is not equal to the given value of θ=30°

Trial 3:

Consider a trial value of 1.803 ft for c.

c=1.803ft

Substitute 1.803 ft for c and 30° for θ in Equation (1).

xA=1.803×sinh1(tan(90°30°))=2.374ft

Substitute 1.803 ft for c and 2.374 ft for xA in Equation (2).

xB=1.803×sinh1[101.803sinh(2.3741.803)]=3.694ft

Substitute 1.803 ft for c and 2.374 ft for xA in Equation (3).

yA=1.803×cosh(2.3741.803)=3.606ft

Substitute 1.803 ft for c and 3.694 ft for xB in Equation (4).

yB=1.803×cosh(3.6941.803)=7.110ft

Substitute 2.374 ft for xA, 3.694 ft for xB, 3.606 ft for yA, and 7.11 ft for yB in Equation (5).

tanθ=7.113.6063.694+2.374θ=30°

The calculated value of θ=30° is equal to the given value of θ=30°

Therefore, the value of c is 1.803 ft.

Substitute 3.606 ft for yA, and 7.11 ft for yB in Equation (6).

a=7.113.606=3.50ft

Therefore, the distance a is 3.50ft_.

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Chapter 7 Solutions

VECTOR MECHANIC

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