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An impulse J = mv at one end of a statio...

An impulse `J = mv` at one end of a stationary uniform frictionless rod of mass `m` and length `l` which is free to rotate in a gravity-free space. The impact is elastic. Instantaneous axis of rotation of the rod will pass through

A

its centre of mass

B

the centre of mass of the rod plus ball

C

the point of impact of the ball on the rod

D

the point which is at a distance `2//3` from the striking end

Text Solution

Verified by Experts

The correct Answer is:
D
`J=mv=mv'`
`implies` Velocity of the `CM` of ther rod `=v`
applying impulse momentum equation about the `CM` of rod

`J=1/2=I_(CM)omegaimplies(mvl)/2=((ml^(2))/12)omegaimplies omega=(6V)/l`
About instantaneous axis of rotatioin the rod is considered to have pure rotation.
Let instantaneous axis of rotation be located at a distance `x` from the colliding end.
`((omegal)/2-v)/(l-x)= (v+(omegal)/2)/x`...i ltbr substituting the value of `omega=6V/l` in eqn i we get `x=2/3l`
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