Physics for Scientists and Engineers, Technology Update, Hybrid Edition (with Enhanced WebAssign Multi-Term LOE Printed Access Card for Physics)
Physics for Scientists and Engineers, Technology Update, Hybrid Edition (with Enhanced WebAssign Multi-Term LOE Printed Access Card for Physics)
9th Edition
ISBN: 9781305116429
Author: Raymond A. Serway, John W. Jewett
Publisher: Cengage Learning
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Chapter 11, Problem 11.51AP

A projectile of mass m moves to the right with a speed νi (Fig. P11.51a). The projectile strikes and sticks to the end of a stationary rod of mass M, length d. pivoted about a frictionless axle perpendicular to the page through O (Fig. PH.51b). We wish to find the fractional change of kinetic energy in the system due to the collision, (a) What is the appropriate analysis model to describe the projectile and the rod? (b) What is the angular momentum of the system before the collision about an axis through O? (c) What is the moment of inertia of the system about an axis through O after the projectile sticks to the rod? (d) If the angular speed of the system after the collision is ω. what is the angular momentum of the system after the collision? (e) Find the angular speed to after the collision in terms of the given quantities. (f) What is the kinetic energy of the system before the collision? (g) What is the kinetic energy of the system after the collision? (h) Determine the fractional change of kinetic energy due to the collision.

Chapter 11, Problem 11.51AP, A projectile of mass m moves to the right with a speed i (Fig. P11.51a). The projectile strikes and

(a)

Expert Solution
Check Mark
To determine

The appropriate analysis model to describe the projectile and the rod.

Answer to Problem 11.51AP

The appropriate analysis model to describe the projectile and the rod is isolated system (angular momentum).

Explanation of Solution

Given info: The mass of the projectile is m , the initial speed of the projectile is vi , the mass of the rod is M , length of the rod is d

From the conservation of the law of angular momentum the total angular momentum of the system remains constant when the net external torque acting on the system about the given axis is 0 .

It is clear from the given explanation and the figure that there is no external force that acts on the rod or the ball and so the angular momentum of the isolated system will remain conserved and so the model for the angular moment of the isolated system will be appropriate model for analysis of projectile and rod.

Conclusion:

Therefore, the appropriate analysis model to describe the projectile and the rod is isolated system (angular momentum).

(b)

Expert Solution
Check Mark
To determine

The angular momentum of the system before an collision about an axis through O .

Answer to Problem 11.51AP

The angular momentum of the system before an collision about an axis through O is mvid2 .

Explanation of Solution

Given info: The mass of the projectile is m , the initial speed of the projectile is vi , the mass of the rod is M , length of the rod is d

The distance from the origin to the ball is,

r=d2

Here,

r is the distance from origin to the ball.

The formula to calculate the moment of inertia of the ball about the point O is,

Ib=mr2

Here,

Ib is the moment of inertia of the ball.

Substitute d2 for r in the above equation.

Ib=m(d2)2=md24

The expression for the initial angular moment of the ball is,

Li=Ibωi (1)

Here,

ωi is the initial angular speed.

Li is the initial angular moment.

The relation between the angular speed and the linear speed is,

ωi=vir

Substitute d2 for r in the above equation.

ωi=vi(d2)=2vid

Substitute 2vid for ωi and md24 for Ib in the equation (1) for the initial angular momentum.

Li=(md24)(2vid)=mvi(d2)=mvid2

Conclusion:

Therefore, the angular momentum of the system before an collision about an axis through O is mvid2 .

(c)

Expert Solution
Check Mark
To determine

The momentum of inertia of the system about an axis through O after the projectile sticks to the rod.

Answer to Problem 11.51AP

The momentum of inertia of the system about an axis through O after the projectile sticks to the rod is (14m+112M)d2 .

Explanation of Solution

Given info: The mass of the projectile is m , the initial speed of the projectile is vi , the mass of the rod is M , length of the rod is d

From part (b) the moment of inertia of the ball is md24 .

The formula to calculate the moment of inertia of the rod about the point O is,

Ir=112Md2

The moment of inertia of the system when projectile sticks to the rod is,

I=Ir+Ib

Here,

I is the moment of inertia after collision.

Substitute md24 for Ib and 112Md2 for Ir in the above equation.

I=md24+112Md2=(14m+112M)d2

Conclusion:

Therefore, the momentum of inertia of the system about an axis through O after the projectile sticks to the rod is (14m+112M)d2 .

(d)

Expert Solution
Check Mark
To determine

The angular momentum of the system after collision.

Answer to Problem 11.51AP

The angular momentum of the system after collision is (14m+112M)d2ω .

Explanation of Solution

Given info: The mass of the projectile is m , the initial speed of the projectile is vi , the mass of the rod is M , length of the rod is d and the angular speed of the system after collision is ω .

The expression for the final angular moment of the ball is,

Lf=Iω

Here,

Lf is the final angular momentum.

From part (c) momentum of inertia of the system about an axis through O after the projectile sticks to the rod is (14m+112M)d2 .

Substitute (14m+112M)d2 for I in the above equation for the final angular momentum.

Li=((14m+112M)d2)ω=(14m+112M)d2ω

Conclusion:

Therefore, the angular momentum of the system after collision is (14m+112M)d2ω .

(e)

Expert Solution
Check Mark
To determine

The angular speed ω after collision in terms of the given quantities.

Answer to Problem 11.51AP

The angular speed ω after collision in terms of the given quantities is 6mvi(M+3m)d .

Explanation of Solution

Given info: The mass of the projectile is m , the initial speed of the projectile is vi , the mass of the rod is M , length of the rod is d

From the law of conservation of angular momentum the expression for the angular momentum is,

Lf=Li

Substitute (14m+112M)d2 for Lf and mvid2 for Li in the above equation.

(14m+112M)d2ω=mvid2ω=(6mviMd+3md)=6mvi(M+3m)d

Conclusion:

Therefore, the angular speed ω after collision in terms of the given quantities is 6mvi(M+3m)d .

(f)

Expert Solution
Check Mark
To determine

The kinetic energy of the system before collision.

Answer to Problem 11.51AP

The kinetic energy of the system before collision is 12mvi2 .

Explanation of Solution

Given info: The mass of the projectile is m , the initial speed of the projectile is vi , the mass of the rod is M , length of the rod is d and the angular speed of the system after collision is ω .

The formula to calculate the kinetic energy of the system is,

KEi=12mv2

Here,

KEi is the translational kinetic energy of the system.

v is the velocity of the object.

Substitute vi for v in the above equation to calculate the initial kinetic energy of the system.

Ek=12mvi2

Conclusion:

Therefore, the kinetic energy of the system before collision is 12mvi2 .

(g)

Expert Solution
Check Mark
To determine

The kinetic energy of the system after collision.

Answer to Problem 11.51AP

The kinetic energy of the system after collision is 3m2vi22(M+3m) .

Explanation of Solution

Given info: The mass of the projectile is m , the initial speed of the projectile is vi , the mass of the rod is M , length of the rod is d and the angular speed of the system after collision is ω .

The expression for the final kinetic energy of the system is,

KEf=12Iω2

Here,

KEf is the final kinetic energy of the system.

From part (c) momentum of inertia of the system about an axis through O after the projectile sticks to the rod is (14m+112M)d2 .

And from part (e) the angular speed ω after collision in terms of the given quantities is 6mvi(M+3m)d .

Substitute (14m+112M)d2 for I and 6mvi(M+3m)d for ω in the above equation for the final angular momentum.

Li=12(14m+112M)d2(6mvi(M+3m)d)2=3m2vi22(M+3m)

Conclusion:

Therefore, the kinetic energy of the system after collision is 3m2vi22(M+3m) .

(h)

Expert Solution
Check Mark
To determine

The fractional change of kinetic energy due to collision.

Answer to Problem 11.51AP

The fractional change in the kinetic energy of the system is M(M+3m) .

Explanation of Solution

Given info: The mass of the projectile is m , the initial speed of the projectile is vi , the mass of the rod is M , length of the rod is d and the angular speed of the system after collision is ω .

The expression to calculate the change in the kinetic energy of the system is,

ΔKE=KEfKEi

Here,

ΔKE is the change in the kinetic energy of the system.

From part (g) kinetic energy of the system after collision is 3m2vi22(M+3m) and from part (f) kinetic energy of the system before collision is 12mvi2 .

Substitute 3m2vi22(M+3m) for KEf and 12mvi2 for KEi in the above equation for the final angular momentum.

ΔKE=3m2vi22(M+3m)12mvi2=[mM2(M+3m)]vi2

Thus, the change in the kinetic energy is [mM2(M+3m)]vi2 .

The formula to calculate the fractional change in the kinetic energy is,

Fractionalchangeinkineticenergy=ΔKEKEi

Substitute [mM2(M+3m)]vi2 for ΔKE and 12mvi2 for KEi in the above equation.

Fractionalchangeinkineticenergy=[mM2(M+3m)]vi212mvi2=M(M+3m)

Conclusion:

Therefore, the fractional change in the kinetic energy of the system is M(M+3m) .

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