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Question

In the arrangement shown in figure mA=mB=2 kg. String is massless and pulley is frictionless. Block B is resting on a smooth horizontal surface, while friction coefficient between blocks A and B is μ=0.5. The maximum horizontal force F that can be applied so that block A does not slip over the block B is. (g=10 m/s2)


A
25 N
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B
40 N
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C
30 N
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D
20 N
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Solution

The correct option is D 20 N
Net horizontal force on B due to string is zero. Hence, the given figure (a) can be replaced by figure (b).

Maximum value of friction between A and B fmax=μmAg=(0.5)(2)(10)=10 N

Block B moves due to friction alone. Therefore, maximum common acceleration of the two blocks can be
amax=fmaxmB=102=5 m/s2

F=(mA+mB)amaxF=(2+2)(5)=20 N

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