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Question

A stone of 1 kg is thrown with a velocity of 20 ms1 across the frozen surface of a lake and comes to rest after travelling a distance of 50 m. What is the force of friction between the stone and the ice?

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Solution

Given, initial velocity of the stone, u=20 ms1
final velocity of the stone, v=0, mass,
massof stone, m=1kg and
distance covered by the stone, s=50 m.
Let the acceleration be a.
By using third equation of motion, v2u2 = 2as, we get,
0202=2a×50
a=4 ms2
Since, no external force is acting on a body therefore, force of friction, F=ma=1×4=4 N.

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