A grinding wheel is in the form of a uniform solid disk of radius 7.02 cm and mass 1.91 kg. It starts from rest and accelerates uniformly under the action of the constant torque of 0.608 Nm that the motor exerts on the wheel. (a) How long does the wheel take to reach its final operating speed of 1 210 rev/min? x If you know the change in velocity and the acceleration you can certainly find the time. Can you determine the (angular) acceleration? s (b) Through how many revolutions does it turn while accelerating? x You know the initial and final (angular) speeds and the time. Can you use constant acceleration equations to determine the (angular) distance traveled during this time interval? rev

Principles of Physics: A Calculus-Based Text
5th Edition
ISBN:9781133104261
Author:Raymond A. Serway, John W. Jewett
Publisher:Raymond A. Serway, John W. Jewett
Chapter10: Rotational Motion
Section: Chapter Questions
Problem 10P: A wheel 2.00 m in diameter lies in a vertical plane and rotates about its central axis with a...
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A grinding wheel is in the form of a uniform solid disk of radius 7.02 cm and mass 1.91 kg. It starts from rest and accelerates uniformly
under the action of the constant torque of 0.608 Nm that the motor exerts on the wheel.
(a) How long does the wheel take to reach its final operating speed of 1 210 rev/min?
x
If you know the change in velocity and the acceleration you can certainly find the time. Can you determine the (angular)
acceleration? s
(b) Through how many revolutions does it turn while accelerating?
x
You know the initial and final (angular) speeds and the time. Can you use constant acceleration equations to determine the
(angular) distance traveled during this time interval? rev
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Transcribed Image Text:A grinding wheel is in the form of a uniform solid disk of radius 7.02 cm and mass 1.91 kg. It starts from rest and accelerates uniformly under the action of the constant torque of 0.608 Nm that the motor exerts on the wheel. (a) How long does the wheel take to reach its final operating speed of 1 210 rev/min? x If you know the change in velocity and the acceleration you can certainly find the time. Can you determine the (angular) acceleration? s (b) Through how many revolutions does it turn while accelerating? x You know the initial and final (angular) speeds and the time. Can you use constant acceleration equations to determine the (angular) distance traveled during this time interval? rev Need Help? Read It
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