4.32. A particle falling vertically from a height hits a plane surface inclined to horizontal at an angle θ with speed v0 and rebounds elastically. Find the distance along the plane where it will hit the second time.

 
Hint: Time taken to travel the distances along OX and perpendicular to OX will be the same.

Step 1: For the motion of the projectile from O to A.

Considering x and y-axes as shown in the diagram.
y = 0, uy = v0cosθay = gcosθ, t = T


Applying the equation of kinematics

y = uyt+12ayt2 0= v0cosθT+12(gcosθ)T2Tv0cosθgcosθ,T2=0T=2v0cosθgcosθ

Hence,   T=2v0g

Step 2: Now considering motion along OX.
x=L,ux=v0sinθ,ax=gsinθ,t=T=2v0g
Applying the equation of kinematics,

x=uxt+12axt2 L=v0sinθt+12gsinθt2=(v0sinθ)(T)+12gsinθT2=(v0sinθ)(2v0g)+12gsinθ×(2v0g)2=2v02gsinθ+12gsinθ×4v02g2=2v02g[sinθ+sinθ] L=4v02gsinθ