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Question

A disk of mass m and radius r rotates about an axis passing through its center and perpendicular to its plane with angular velocity ω. Find the percentage change in the kinetic energy when an identical disc is placed over the first disc and both the discs rotate about an axis passing through their center and perpendicular to the plane with same angular velocity ω. Assume there is no friction between the surfaces.

A
25%
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B
50%
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C
75%
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D
100%
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Solution

The correct option is D 100%
When single disc is rotating, kinetic energy is given by
K.E1=12I1ω2
MOI of disc, I1=mr22
KE1=12(mr22)ω2=mr2ω24


When two discs are rotating, then kinetic energy is given by
K.E2=12I2ω2
I2=2×mr22=mr2
i.e KE2=12(mr2)ω2=mr2ω22


Hence, percentage change in kinetic energy,
ΔKE%=KE2KE1KE1×100
=(mr2ω22)(mr2ω24)(mr2ω24)×100
=0.50.250.25×100
=100%

So, percentage change in the kinetic energy is 100%.

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