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Question

A particle of mass 'm' is projected with velocity 'v' making an angle of 45 with the horizontal. The magnitude of the angular momentum of the projectile about the point of projection when the particle is at its maximum height 'h' is


A
Zero
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B
mv34g
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C
mv32g
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D
m2gh3
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Solution

The correct option is D m2gh3
L=mvxh
L=m(vcos45)v2sin2452g
L=mv342g
Further L=mvxh
L=m(vcos45)ho
But h=v2sin2452g
v=2gh
L=mv22ghh
L=m2gh3.

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