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
mv3√2g
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D
m√2gh3
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Solution
The correct option is Dm√2gh3 L=mvxh ⇒L=m(vcos45∘)v2sin245∘2g ⇒L=mv34√2g
Further L=mvxh ⇒L=m(vcos45∘)ho
But h=v2sin245∘2g ⇒v=2√gh ⇒L=mv√22√ghh ⇒L=m√2gh3.