Vector Mechanics For Engineers
Vector Mechanics For Engineers
12th Edition
ISBN: 9781259977305
Author: BEER, Ferdinand P. (ferdinand Pierre), Johnston, E. Russell (elwood Russell), Cornwell, Phillip J., SELF, Brian P.
Publisher: Mcgraw-hill Education,
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Chapter 13.3, Problem 13.148P
To determine

(a)

Impulse exerted on the rivet and the energy absorbed by the rivet if anvil has infinite mass.

Expert Solution
Check Mark

Answer to Problem 13.148P

When anvil has infinite mass, the energy absorbed by the rivet is 9.316ft.lb.

The impulse exerted on the rivet is 0.9316lb.s.

Explanation of Solution

Given information:

Vector Mechanics For Engineers, Chapter 13.3, Problem 13.148P , additional homework tip  1

Weight of hammer is 1.5lb.

The velocity of the rivet is 20ft/s.

“A force acting on a particle during a very short time interval but large enough to produce a definite change in momentum is called an impulsive force.”

Impulse momentum principle for impulsive motion is defined as

mv1+FavgΔt=mv2

The total linear momentum of two particles is conserved. Therefore

mAvA+mBvB=mAvA1+mBvB1

Calculation:

Mass mH of hammer

mH=1.5lb32.2ft/s2=0.04658lb.s2/ft

Kinetic energy T1 before the impact

Assume vH as the velocity of the hammer.

T1=12mHvH2=12(0.04658lb.s2/ft)(20ft/s)2=9.316ft.lb

Assume v2 as the common velocity of hammer and anvil just after the impact and mA as the mass of anvil.

Apply conservation of linear momentum.

mHvH=(mH+mA)v2

Rearrange

v2=mHvHmH+mA(1)

Kinetic energy T2 after the impact

T2=12(mH+mA)v22=12(mH+mA)(mHvHmH+mA)2=12mH2vH2mH+mAT2=mHmH+mAT1(2)

Find the impulse FΔt exerted on the hammer.

mv1+FavgΔt=mv2mHvHFΔt=mHv2

Rearrange:

FΔt=mH(vHv2)(3)

If anvil has infinite mass

According to equation 1:

v2=0

According to equation 2:

T2=0

Energy absorbed by the rivet.

T1T2=9.316ft.lb

Impulse exerted on the rivet.

FΔt=mHvH=(0.04658lb.s2/ft)(20ft/s)=0.9316lb.s

Conclusion:

When anvil has infinite mass, the energy absorbed by the rivet is 9.316ft.lb.

The impulse exerted on the rivet is 0.9316lb.s.

To determine

(b)

Impulse exerted on the rivet and the energy absorbed by the rivet if anvil has a weight of 9lb.

Expert Solution
Check Mark

Answer to Problem 13.148P

When anvil has a weight of 9lb, the energy absorbed by the rivet is 7.9853ft.lb.

The impulse exerted on the rivet is 0.7985lb.s.

Explanation of Solution

Given information:

Vector Mechanics For Engineers, Chapter 13.3, Problem 13.148P , additional homework tip  2

Weight of hammer is 1.5lb.

The velocity of the rivet is 20ft/s.

“A force acting on a particle during a very short time interval but large enough to produce a definite change in momentum is called an impulsive force.”

Impulse momentum principle for impulsive motion is defined as

mv1+FavgΔt=mv2

The total linear momentum of two particles is conserved. Therefore

mAvA+mBvB=mAvA1+mBvB1

Calculation:

According to sub part a

v2=mHvHmH+mA(1)

T2=mHmH+mAT1(2)

FΔt=mH(vHv2)(3)

Mass mA of anvil

mA=9lb32.2ft/s2=0.2795lb.s2/ft

The common velocity v2 of anvil and hammer just after the impact.

v2=(0.04658lb.s2/ft)(20ft/s)0.32608lb.s2/ft=2.857ft/s

The kinetic energy T2 just after the impact.

T2=(0.04658lb.s2/ft)(0.32608lb.s2/ft)(9.316ft.lb)=1.3307ft.lb

Energy absorbed by the rivet.

T1T2=9.316ft.lb1.3307ft.lb=7.9853ft.lb

The impulse FΔt exerted on the rivet.

FΔt=(0.04658lb.s2/ft)(20ft/s2.857ft/s)=0.7985lb.s

Conclusion:

When anvil has a weight of 9lb, the energy absorbed by the rivet is 7.9853ft.lb.

The impulse exerted on the rivet is 0.7985lb.s.

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Chapter 13 Solutions

Vector Mechanics For Engineers

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