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Question

In the figure shown the acceleration of A is aA=15^i+15^j, then the acceleration of B is (A remains in contact with B ).


A
6^i
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B
15^i
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C
10^i
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D
5^i
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Solution

The correct option is D 5^i
Given, aA=15^i+15^j
aAX=15 and aAY=15



From wedge constaint, the acceleration of A and B in the direction normal to the contact surface should be equal.
Also, the wedge B have to be in contact with lower surface so, it has acceleration along horizontal direction only as shown.
So, from the figure shown above we have,
(aA) = (aB)
aAXcos53aAYcos37=aBcos53
15(35)15(45)=aB(35)
(912)=aB(35)
aB=153
aB=5 m/s2
Thus, aB=5^i

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