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Question

Seven particles each of mass m are placed at the corners of a cube of side b. The co-ordinates of the centre of mass of the system is

A
(2b7,2b7,2b7)
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B
(3b7,3b7,3b7)
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C
(4b7,4b7,4b7)
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D
(5b7,5b7,5b7)
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Solution

The correct option is B (3b7,3b7,3b7)
We can assume one more mass m kept at the empty corner. Then the centre of mass of the system will be at the centre of the cube.
r=b2^i+b2^j+b2^k
Now, C.O.M of the original system will be,
rC.O.M=MrmrMm
rC.O.M=8m×(b2^i+b2^j+b2^k)m×(b^i+b^j+b^k)8mm
rC.O.M=3b7^i+3b7^j+3b7^k
Hence, the coordinates of COM is (3b7,3b7,3b7)

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