A uniform rod AB of length l and mass m is free to rotate about point A. The rod is released from rest in horizontal position. Given that the moment of inertia of the rod about A is ml23. The initial angular acceleration of the rod will be
A
2g3l
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B
mgl2
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C
3gl2
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D
3g2l
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Solution
The correct option is D3g2l Let the initial angular acceleration of the rod be α
Torque τ=F×r
where, F=mg and r=l/2 τ=l/2×mgτ=mgl2.....(1)
τ=I×α.....(2)
Equating (1) and (2), mgl2=I×αmgl2=ml23×αα=3g2l