Solving for Speed & Acceleration of a Rock in a Tire

AI Thread Summary
The problem involves calculating the speed and acceleration of a rock located on the outer edge of a tire rotating at 180 revolutions per minute (rev/min) with a radius of 0.5 meters. The tire's rotation translates to 3 revolutions per second, resulting in a linear speed of approximately 9.42 meters per second for the rock. The acceleration experienced by the rock is centripetal, calculated using the formula for centripetal acceleration, which confirms the correct approach. At a constant angular velocity, while tangential acceleration is zero, centripetal acceleration remains present. Understanding these concepts is crucial for solving rotational motion problems effectively.
Jacob87411
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Just curious if this was the right way to do this problem.

A tire is going at 180 rev/min. There is a rock in the tire (on the outside) and the tire has a radius of .5 meters. What is the speed and acceleration of the rock?

180 rev/min = 3 rev / s
3 rev/s means its going 3 circumferences every second so that's 2(3.14)(.5) which is 3.14*3. So the rock is going 9.42 m/s for the speed. Then the acceleration is centripetal which is 9.42^2/.5?
 
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You are correct.

http://hyperphysics.phy-astr.gsu.edu/hbase/rotq.html#rq

At a constant angular velocity, the tangential angular acceleration is zero, but there is still centripetal acceleration.

The rotational frequency, f, in rpm or rps is related to the angular frequency, \omega = 2 \pi f, and the period of rotation, T = 1/f.
 

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