Find the acceleration of the block of mass M in the situation shown in the figure. All the surfaces are frictionless and the pulley and the string are light.
A
g
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B
g3
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C
3g
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D
g5
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Solution
The correct option is Bg3 Assuming the accelerations as shown, T - Mg sinθ=M (2a) ⇒T=2Ma + Mg sinθ ......(1) 2Mg-2T=2Ma......(2)
On multiplying by 2 on both sides in equation (1) 2T=4Ma + 2Mg sinθ......(3)
On adding equation (2) and (3) 2Mg=6Ma + 2Mg sinθ
(Given θ=30∘) ⇒6Ma+2Mg sin 30∘−2Mg=0 ⇒6Ma = Mg⇒a=g6.
Acceleration of mass M is 2a=2×g6=g3 up the plane.