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Chapter 8: Q. 64 (page 202)

In Problems 64 and 65 you are given the equation used to solve a problem. For each of these, you are to
a. Write a realistic problem for which this is the correct equation. Besure that the answer your problem requests is consistent with the equation given.
b. Finish the solution of the problem.
60 N = (0.30 kg)Ó¬2(0.50 m)

Short Answer

Expert verified

a) A ball of mass 300 gm , attached to a string , is rotating around a horizontal circle of 0.5 m radius. The tension on the string is 60 N . Find the angular velocity of the ball.

b) Angular velocity is 20 rad/sec or 190.985 rmp.

Step by step solution

01

Part(a) Step 1 : Given information

The equation given is 60 N = (0.30 kg)Ó¬2 (0.50 m)

02

Part(a) Step 2 : Explanation

Lets observe the equation given 60 N = (0.30 kg)Ó¬2 (0.50 m)

We have Force =60 N. Mass 0.3 kg and radius 0.5 m. Angular velocity is unknown.

We can state problem as

A ball of mass 300 gm , attached to a string , is rotating around a horizontal circle of 0.5 m radius. The tension on the string is 60 N . Find the angular velocity of the ball.

03

Part(b) Step 1 : Given information

The equation given is 60 N = (0.30 kg)Ó¬2 (0.50 m)

04

Part(b) Step 2 : Explanation

The centripetal force acting on a mass m revolving with angular speed Ó¬around a circle of radius r is given by mÓ¬2 r.

The angular velocity of the ball is calculated as

60N=(0.30kg)Ó¬2(0.50m)Ó¬2=60N(0.30kg)(0.50m)Ó¬=20rad/s

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