Vector Mechanics for Engineers: Statics and Dynamics
Vector Mechanics for Engineers: Statics and Dynamics
12th Edition
ISBN: 9781259638091
Author: Ferdinand P. Beer, E. Russell Johnston Jr., David Mazurek, Phillip J. Cornwell, Brian Self
Publisher: McGraw-Hill Education
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Chapter 15.2, Problem 15.71P

The 80-mm-radius wheel shown rolls to the left with a velocity of 900 mm/s. Knowing that the distance AD is 50 mm, determine the velocity of the collar and the angular velocity of rod AB when (a) β = 0, (b) β = 90°.

Chapter 15.2, Problem 15.71P, The 80-mm-radius wheel shown rolls to the left with a velocity of 900 mm/s. Knowing that the

Fig. P15.71

(a)

Expert Solution
Check Mark
To determine

Find the velocity of the collar and the angular velocity of rod AB when β=0.

Answer to Problem 15.71P

The velocity of the collar and the angular velocity of rod AB when β=0.

 are vB338mm/s()_ and 2.37rad/s(Clockwise)_.

Explanation of Solution

Given information:

The radius of the wheel is r=80mm.

The velocity of the wheel is vD=900mm/s.

Calculation:

Calculate the angular velocity (ωAD) of AD using the relation:

ωAD=vDr

Substitute 900mm/s for vD and 80mm for r.

ωAD=900mm/s80mm=11.25rad/s=11.25krad/s

Consider the value of the angle β=0.

Consider the position of point A with respect to point D is denoted by rA/D=50jmm.

Show the relation between the velocity at A and D as follows:

vA=vD+ωAD×rA/D

Substitute 900imm/s for vD, 11.25krad/s for ωAD, and 50jmm for rA/D.

vA=900imm/s+(11.25krad/s)×(50jmm)vA=900imm/s+562.5imm/svA=900imm/s+562.5imm/svA=337.5imm/s

Consider the position of the point B with respect to A is denoted by rB/A=(214i+1300j)mm.

Show the relation between the velocity at A and B using the relation:

vB=vA+ωAB×rB/AvB=vA+(ωABk)×rB/A

Substitute (214i+130j)mm for rB/A and 337.5imm/s for vA.

vB=337.5i+ωABk×(214i+130j)vBi=337.5i+(214ωABj130ωABi)vBi=(337.5+130ωAB)i+214ωABj (1)

Equate j component of Equation (1) as follows:

0=214ωABωAB=0

Thus, the angular velocity of the rod AB is 0_.

Equate i component of Equation (1) as follows:

`vB=(337.5+130ωAB)

Substitute 0 for ωAB.

vB=(337.5+130×0)vB=337.5mm/svB338mm/svB338mm/s()

Thus, the velocity of the collar B is vB338mm/s()_.

(b)

Expert Solution
Check Mark
To determine

 Find the velocity of the collar and the angular velocity of rod AB when β=90°.

Answer to Problem 15.71P

The velocity of the collar and the angular velocity of rod AB when β=90°.

 are `vB710mm/s()_ and 0_.

Explanation of Solution

Given information:

The radius of the wheel is r=80mm.

The velocity of the wheel is vD=900mm/s.

Calculation:

Calculate the angular velocity (ωAD) of AD using the relation:

ωAD=vDr

Substitute 900mm/s for vD and 80mm for r.

ωAD=900mm/s80mm=11.25rad/s=11.25krad/s

Consider the value of the angle β=90°.

Consider the position of point A with respect to point D is denoted by rA/D=50imm.

Show the relation between the velocity at A and D as follows:

vA=vD+ωAD×rA/D

Substitute 900imm/s for vD, 11.25krad/s for ωAD, and 50imm for rA/D.

vA=900imm/s+(11.25krad/s)×(50imm)vA=900imm/s+562.5jmm/s

Consider the position of the point B with respect to A is denoted by rB/A=(237i+80j)mm.

Show the relation between the velocity at A and B using the relation:

vB=vA+ωAB×rB/AvB=vA+(ωABk)×rB/A

Substitute (237i+80j)mm for rB/A and (900imm/s+562.5jmm/s) for vA.

vB=(900i+562.5j)+ωABk×(237i+80j)vBi=900i+562.5j+(237ωABj80ωABi)vBi=(90080ωAB)i+(562.5+237ωAB)j (1)

Equate j component of Equation (1) as follows:

0=(562.5+237ωAB)ωAB=562.5237ωAB=2.37rad/sωAB=2.37rad/s(Clockwise)

Thus, the angular velocity of the rod AB is 2.37rad/s(Clockwise)_.

Equate i component of Equation (1) as follows:

vB=(90080ωAB)

Substitute 2.37rad/s for ωAB.

`vB=(90080×(2.37rad/s))`vB=710mm/s`vB710mm/s()

Thus, the velocity of the collar B is `vB710mm/s()_.

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Chapter 15 Solutions

Vector Mechanics for Engineers: Statics and Dynamics

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