Physics
Physics
5th Edition
ISBN: 9781260486919
Author: GIAMBATTISTA
Publisher: MCG
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Chapter 8, Problem 53P

(a)

To determine

The angular speed of discuss at a moment just before the release.

(a)

Expert Solution
Check Mark

Answer to Problem 53P

The angular speed is 13rad/s.

Explanation of Solution

Number of revolutions are 1.5 , time taken is 1.4s, radius of circular path is 0.90m, and the mass of discuss is 2.0kg.

Write the equation for average angular velocity and the angular displacement.

ωav=ΔθΔt

Here, ωav is the average angular velocity, Δθ is the displacement, and Δt is the time.

Write the equation to find ωav.

α

Here,ωi is the initial angular speed and ωf is the final angular speed.

Equate the right hand sides of above two equations.

ΔθΔt=ωi+ωf2

Conclusion:

Substitute 1.5rev for Δθ, 0rad/s for ωi, and 1.4s for Δt in the above equation to find ωf.

(1.5rev(2πrad/rev1rev))1.4s=0rad/s+ωf2ωf=13rad/s

Therefore, the angular speed is 13rad/s.

(b)

To determine

The torque that must be applied on discuss.

(b)

Expert Solution
Check Mark

Answer to Problem 53P

The torque is 16N/m.

Explanation of Solution

Number of revolutions are 1.5 , time taken is 1.4s, radius of circular path is 0.90m, and the mass of discuss is 2.0kg.

Consider the discus as a point object.

Write the equation for torque.

τ=Iα (I)

Here, τ is the torque, I is the moment of inertia, and α is the angular velocity.

Write the equation for I.

I=MR2 (II)

Here, M is the mass of discus and R is the

Write the equation for α.

α=ωfωiΔt (III)

Rewrite equation (I) by substituting equations (II) and (III).

τ=(MR2)(ωfωiΔt)

Write the equation for ωfωi.

ωfωi=2ΔθΔt

Rewrite the previous equation for τ by substituting the above equation for ωfωi.

τ=(MR2)(2Δθ/ΔtΔt)=2MR2Δθ(Δt)2

Conclusion:

Substitute 2.0kg for M, 0.90m for R, 1.5rev for Δθ, and 1.4s for Δt in the above equation to find ωf.

τ=2(2.0kg)(0.90m)2(1.5rev(2πrad/rev1rev))(1.4s)2=31.361.96Nm=16Nm

Therefore, the torque is 16N/m.

(c)

To determine

The distance from athlete to the landing point of discus.

(c)

Expert Solution
Check Mark

Answer to Problem 53P

The distance is 15m.

Explanation of Solution

Number of revolutions is 1.5 , time taken is 1.4s, radius of circular path is 0.90m, the mass of discuss is 2.0kg, and the angle of projection is 45° with respect to the horizontal.

The discus will execute a parabolic path. Write the equation to find the initial velocity of discus.

vi=R(2ΔθΔt)

Here, vi is the initial velocity of discus.

Write the equation to find the distance to landing place from the athlete.

Δx=2vi2sinθcosθg

Here, Δx is the distance to landing place from the athlete, θ is the angle of projection, and g is the acceleration due to gravity.

Conclusion:

Substitute 0.90m for R, 1.5rev for Δθ, and 1.4s for Δt in the above equation to find vi.

vi=(0.90m)(2(1.5rev(2πrad/rev1rev))1.4s)=(0.90m)(13.33s1)=12m/s

Substitute 12m/s for vi, 45° for θ, and 9.8m/s2 for g in the above equation to find Δx.

Δx=2(12m/s)2(sin45°)(cos45°)9.8m/s2=143.96m2/s29.8m/s2=15m

Therefore, the distance is 15m.

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Chapter 8 Solutions

Physics

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