If x is the ratio of rotational kinetic energy and translational kinetic energy of a rolling body and considering friction to be sufficient enough to prevent any slipping, which of the following statement is true
A
x=1
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B
x≤1
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C
x≥1
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D
x=12
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Solution
The correct option is Bx≤1 Rotational kinetic energy =12ICMω2
Translational kinetic energy =12mv2
condition of pure rolling v=rω ∴x=12ICMω212mv2=ICM×v2r2mv2=ICMmr2...(i)
where,ICM=moment of inertia of body about an axis passing through it's centre of mass.
Hence, from formula we know ICMmr2=K
Where K is the radius of gyration and K≤1 ∴x≤1