A horizontal heavy uniform bar of weight 'W' is supported at its ends by two men. At the instant, one of the men lets go off his end of the rod, the other feels the force on his hand changed to
A
W
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B
W2
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C
3W4
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D
W4
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Solution
The correct option is DW4 Let the mass of the rod is M ∴ Weight (W) = Mg
Initially for the equilibrium F + F = mg ⇒F=Mg2 When one man withdraws, the torque on the rod τ=Iα=Mgl2 ⇒Ml23α=Mg12[Asl=Ml23]
⇒ Angular acceleration α=32gl and linear acceleration a=l2α=3g4
Now if the new normal force at A is F then Mg - F = Ma ⇒F=Mg−Ma=Mg−3Mg4=Mg4=W4.