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Question

A body of mass 2 kg is thrown vertically up with kinetic energy of 500 J. What will be height at which the kinetic energy of the body becomes 23rd of original value? (g=10 m/s2)

A
6 m
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B
9.86 m
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C
8.33 m
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D
6.23 m
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Solution

The correct option is C 8.33 m
Given m=2 kg and Kinetic energy (Ki) =500 J
From the law of conservation of energy
Ki+Ui=Kf+Uf [Here, sum of kinetic energy and potential energy will be constant ]
Ki+0=2Ki3+mgh (Given Kf=2Ki3 and as ground is taken as reference Ui=0)

Ki3=mgh
5003=2×10×h
h=8.33 m

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