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Question

Two particles of the same mass move in the x - y plane with velocities 2^i ms1 and 3^j ms1. The first particle is given an acceleration (2^i+2^j) ms2 and the second particle in given an acceleration (2^i+4^j) ms2. The centre of mass of the system of two particles will move along a

A
Straight line
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B
Circle
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C
Ellipse
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D
Parabola
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Solution

The correct option is A Straight line
vcm=mv1+mv2m+m
=12(v1+v2)
vcm=12(2^i+3^j)ms1
acm=ma1+ma2m+m=12(a1+a2)
=12[(2^i+2^j)+(2^i+4^j)]=(2^i+3^j) ms2
It is clear that vcm and acm are parallel vectors. Thus the acceleration of the centre of mass is along its velocity. hence it follows a straight line trajectory.

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