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Three particles of masses 1 kg, 2 kg and...

Three particles of masses `1 kg, 2 kg` and `3 kg` are situated at the corners of an equilateral triangle move at speed `6ms^(-1), 3ms^(-1)` and `2ms^(-1)` respectively. Each particle maintains a direction towards the particles at the next corners symmetrically. Find velocity of `CM` of the system at this instant

A

`3ms^(-1)`

B

`5ms^(-1)`

C

`6ms^(-1)`

D

zero

Text Solution

Verified by Experts

The correct Answer is:
D
`vecv_(cm)=(m_(1)vecv_(1)+m_(2)vecv_(2)+m_(3)vecv_(3))/(m_(1)+m_(2)+m_(3))`
`implies vecv_(cm)=("Total momentum")/("Total mass")`

here total momentum of system is zero beause momentum of each particle is same in magnitude and they are symmetrically oriented as shown.
So `vecp_(1)+vecp_(2)+vecp_(3)=0`
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