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Question

A uniform rod of length L and mass M is held vertical with its bottom end pivoted to the floor. The rod falls under gravity, freely turning about the pivot. If acceleration due to gravity is g, what is the instantaneous angular speed of the rod when it makes an angle of 60 with the vertical?

A
(gL)12
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B
(3g4L)12
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C
(33g2L)12
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D
(3g2L)12
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Solution

The correct option is D (3g2L)12
Let COM= c and θ=60o
Change in height of COM due to turning of rod , (h)=l2l2cos60oh=l4
then,
Total potential energy mgh=mgl4
Rotational kinetic energy =12Iω2
By energy conservatiion,
mgl4=12Iω2
6g4l=ω2ω=3g2l
Hence, option D is correct.

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