A particle is projected at an angle of $37^{\circ}$ with an inclined plane. The inclined plane is at an angle of $60^{\circ}$ with the horizontal. Find
I. Time of flight of particle.
II. Distance traveled by particle (AB) along the inclined plane

I. Time of flight $= 2.4 s$
II. Distance traveled $= 5.7 m$

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I. Time of flight $= 1.2 s$
II. Distance traveled $= 5.7 m$

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I. Time of flight $= 4.8 s$
II. Distance traveled $= 11.4 m$

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I. Time of flight $= 6.4 s$
II. Distance traveled $= 11.4 m$

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Solution

The correct option is A
I. Time of flight $= 2.4 s$
II. Distance traveled $= 5.7 m$

Here, $u_{y} = u s i n α = u s i n 37^{\circ} = \frac{3}{5} \times 10 = 6 m / s$
$a_{y} = - g c o s θ = - g c o s 60^{\circ} = - 10 \times \frac{1}{2} = - 5 m / s^{2}$
Now, from first equation of motion, $0 = u_{y} + a_{y} t \Rightarrow t = \frac{6}{5}$
Hence, time period, $T = 2 t = 2.4 s$

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A particle is projected at an angle of 37∘ with an inclined plane. The inclined plane is at an angle of 60∘ with the horizontal. Find I. Time of flight of particle. II. Distance traveled by particle (AB) along the inclined plane

The correct option is A I. Time of flight =2.4s II. Distance traveled =5.7m Here, uy=u sin α=u sin 37∘=35×10=6 m/s ay=−g cos θ=−g cos 60∘=−10×12=−5 m/s2 Now, from first equation of motion, 0=uy+ayt⇒t=65 Hence, time period, T=2t=2.4 s

A particle is projected at an angle of $37^{\circ}$ with an inclined plane. The inclined plane is at an angle of $60^{\circ}$ with the horizontal. Find
I. Time of flight of particle.
II. Distance traveled by particle (AB) along the inclined plane