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Question

Two blocks A and B of equal masses are released from an inclined plane of inclination 45 at t=0 . Both the blocks are initially at rest. The coefficient of kinetic friction between the block A and the inclined plane is 0.2 while it is 0.3 for block B. Initially the block A is 2 m behind the block B. When and where from the position of A, front faces of both the blocks will come in a line? (Take g=10m/s2)

A
2 s,82 m
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B
1 s, 82 m
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C
2 s, 102 m
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D
1 s, 102 m
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Solution

The correct option is A 2 s,82 m
Acceleration of A down the plane.

aA=gsin45μAgcos45
=(10)(12)(0.2)(10)(12)=42 m/s2
Similarly acceleration of B down the plane.
aB=gsin45μBgcos45
=(10)(12)(0.3)(10)(12)=3.52 m/s2
The front face of A and B will come in a line when,
sA=sB+2
[where sA and sB are the distance travelled by the block A and B in m respectively]
or 12aAt2=12aBt2+2
12×42×t2=12×3.52×t2+2
Solving this equation, we get t=2 s
Further, sA=12aAt2=12×42×(2)2=82 m
Hence, both the blocks will come in a line after A has travelled a distance 82 m down the plane.

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