A solid disk of mass 3 kg and radius 0.20 m has a constant torque of 0.60 N·m applied. What is its angular acceleration?

Prepare for the MIAT Physics Test with our comprehensive quizzes. Use multiple choice questions and review explanations for each answer. Get ready to excel in your exam!

Multiple Choice

A solid disk of mass 3 kg and radius 0.20 m has a constant torque of 0.60 N·m applied. What is its angular acceleration?

Explanation:
Torque sets how quickly the disk spins up, via tau = I alpha. For a solid disk, the moment of inertia about its center is I = (1/2) M R^2. With M = 3 kg and R = 0.20 m, I = 0.5 × 3 × (0.20)^2 = 0.06 kg·m^2. The applied torque is 0.60 N·m, so the angular acceleration is alpha = tau / I = 0.60 / 0.06 = 10 rad/s^2. Since the torque is constant, the angular acceleration is constant as well. Answer: 10 rad/s^2.

Torque sets how quickly the disk spins up, via tau = I alpha. For a solid disk, the moment of inertia about its center is I = (1/2) M R^2. With M = 3 kg and R = 0.20 m, I = 0.5 × 3 × (0.20)^2 = 0.06 kg·m^2. The applied torque is 0.60 N·m, so the angular acceleration is alpha = tau / I = 0.60 / 0.06 = 10 rad/s^2. Since the torque is constant, the angular acceleration is constant as well. Answer: 10 rad/s^2.

Subscribe

Get the latest from Examzify

You can unsubscribe at any time. Read our privacy policy