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Question

A circular disc rolls down an inclined plane without slipping. What fraction of its total energy is translational energy?

A
12
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B
12
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C
23
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D
13
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Solution

The correct option is C 23
Rotational kinetic energy is,

KEr=12Iω2=14MR2ω2

( For the disc, I=12MR2)

Translational kinetic energy is,

KEt=12Mv2=12M(Rω)2=12MR2ω2

( For pure rolling, v=Rω)

Now, total kinetic energy is,

KE=KEr+KEt=34MR2ω2

So,

KEtKE=12MR2ω234MR2ω2=23

Hence, option (D) is the correct answer.

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