(C) The horizontal component of the velocity is $v_x = v \cos \theta = 2 \sqrt{gh} \cos 60^{\circ}$.Since $\cos 60^{\circ} = \frac{1}{2}$,we have $v_x

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(C) The horizontal component of the velocity is $v_x = v \cos \theta = 2 \sqrt{gh} \cos 60^{\circ}$.Since $\cos 60^{\circ} = \frac{1}{2}$,we have $v_x = 2 \sqrt{gh} \times \frac{1}{2} = \sqrt{gh}$.The particle travels a horizontal distance $d = 2h$ between the two walls.Since the horizontal component of velocity remains constant in projectile motion,the time $t$ taken to travel between the walls is given by $t = \frac{d}{v_x}$.Substituting the values,$t = \frac{2h}{\sqrt{gh}} = 2 \sqrt{\frac{h}{g}}$.

Class 11 Physics 3-2.Motion in Plane Horizontal Projectile Motion

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$A$ particle is projected with velocity $2 \sqrt{gh}$ at an angle $60^{\circ}$ to the horizontal so that it just clears two walls of equal height $h$ which are at a distance $2h$ from each other. The time taken by the particle to travel between these two walls is

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A
$2 \sqrt{\frac{2h}{g}}$
B
$\sqrt{\frac{h}{2g}}$
C
$2 \sqrt{\frac{h}{g}}$
D
$\sqrt{\frac{h}{g}}$

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3-2.Motion in Plane

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Horizontal Projectile Motion

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$A$ particle is projected with velocity $2 \sqrt{gh}$ at an angle $60^{\circ}$ to the horizontal so that it just clears two walls of equal height $h$ which are at a distance $2h$ from each other. The time taken by the particle to travel between these two walls is

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