A uniform rod of length l & mass M is free to rotate about frictionless pin through one end. The rod is released from rest in a horizontal position. Find momentum of system (rod) when rod is at its lowest position.
A
M√5gl
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B
M√3gl
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C
M√2gl
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D
M2√3gl
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Solution
The correct option is DM2√3gl ∵COM is at l2. By conservation of energy: loss in PE = gain in KE⇒Mgl2=12Mll3ω2 ⇒ω2=6gl2l2=3gl ⇒ω=√3gl vCM=l2ω=l2√3gl=√3gl4,p=MvCM=M√3gl4