College Physics
11th Edition
ISBN: 9781305952300
Author: Raymond A. Serway, Chris Vuille
Publisher: Cengage Learning
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- Why did you use Tan for the direction? and by chance could you draw a diagram of what this would look like? Like the particle and those two torquesarrow_forwardI keep getting wrong answers for this problem how do I do it? solving for angular accelerationarrow_forwardThe tires of a car make 70 revolutions as the car reduces its speed uniformly from 90.0 km/hkm/h to 65.0 km/hkm/h. The tires have a diameter of 0.88 mm. What was the angular acceleration of the tires? If the car continues to decelerate at this rate, how much more time is required for it to stop? If the car continues to decelerate at this rate, how far does it go? Find the total distance.arrow_forward
- I tie a bucket of water to a rope and twist the rope by applying a constant torque such that the bucket starts to rotate in the horizontal plane. As the bucket rotates, the level of the water rises towards the edge of the bucket and lowers towards the middle of the bucket, as shown. Does the angular acceleration of the bucket increase, decrease, or remain the same? Explain.arrow_forwardThe tires of a car make 69 revolutions as the car reduces its speed uniformly from 90.0 km/hkm/h to 63.0 km/hkm/h . The tires have a diameter of 0.90 mm . A) Part complete What was the angular acceleration of the tires? B) If the car continues to decelerate at this rate, how much more time is required for it to stop? C) How far does the car go? Find the total distance. * with steps and explains and equations please??arrow_forward*Chapter 10, Problem 31 ZYour answer is partially correct. Try again. A disk, with a radius of 0.25 m, is to be rotated like a merry-go-round through 200 rad, starting from rest, gaining angular speed at the constant rate 1 through the first 100 rad and then losing angular speed at the constant rate -1 until it is again at rest. The magnitude of the centripetal acceleration of any portion of the disk not to exceed 400 m/s2. (a) What is the least time required for the rotation? (b) What is the corresponding value of C1 ? (a) Number Units (b) Number Units Trad/s^2arrow_forward
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