A uniform rod of length `l` and mass 2 m rests on a smooth horizontal table. A point mass `m` moving horizontally at right angles to the rod with velocity `v` collides with one end of the rod and sticks it. ThenA. `1/6mv^(2)`B. `1/3mv^(2)`C. `mv^(2)`D. `(mv^(2))/5`

A uniform rod of length `l` and mass 2 m rests on a smooth horizontal

1.	A uniform rod of length `l` and mass 2 m rests on a smooth horizontal table. A point mass `m` moving horizontally at right angles to the rod with velocity `v` collides with one end of the rod and sticks it. ThenA. `1/6mv^(2)`B. `1/3mv^(2)`C. `mv^(2)`D. `(mv^(2))/5`
Answer» Correct Answer - A Loss in kinetic energy of the system as a result of collision `=K_("Initial")-K_("Final")=1/2mv^(2)-{1/2(m+2m)v_(CM)^(2)=1/2I_(CM)omega^(2)}` `=1/2mv^(2)-{1/2(3m)(v/3)^(2)+1/2((ml^(2))/3)(v/l)}` For the composite `I_(CM)=(ml^(2))/3=1/2mv^(2)-1/3m v^(2)=1/6mv^(2)`

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A uniform rod of length `l` and mass 2 m rests on a smooth horizontal table. A point mass `m` moving horizontally at right angles to the rod with velocity `v` collides with one end of the rod and sticks it. ThenA. `1/6mv^(2)`B. `1/3mv^(2)`C. `mv^(2)`D. `(mv^(2))/5`

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