Two inclined planes OA and OB having inclinations `30^(@)` and `60^(@)` respectively, intersect each other at O as shown in figure. A particle is projected from point P with velocity `u = 10 sqrt()3 m//s` along a direction perpendicular to plane OA. If the particle strikes the plane OB perpendicular at Q. Calculate
(i) Time of flight.
(ii) Velocity with which particle strikes the plane OB.
(iii) Vertical height of P from O.
(iv) Maximum height from O attained by the particle.
(vi) Distance PQ.

(i) `v(t)=(u -g cos 30^(@) t) hat(i) -g sin theta t hat(j)`
From given situation
`u -g cos 30^(@) t = 0`
`t =2 sec`
(ii) Velocity `u_(x) = 0,a_(x) = g cos 30^(@) = (g)/(2)`
`:. v_(x) =0 +(g)/(2) xx 2 = 10 m//s`
(iii) Distance `PO =`
`10 sqrt(3) cos 90^(@) xx t +(1)/(2) xxg sin 30^(@) xx (2)^(2)`
`PO = 10 m :. h = 10 sin 30^(@) = 5 m`
(iv) Maximum height `= h + (u(sin 60^(@))^(2))/(2g)`
`= 5 +((10 sqrt(3) xx (sqrt(3))/(2)))/(20) =16.25 m`
(v) Distance PQ
`OQ = ((10 sqrt(3))^(2))/(2g cos 30^(@))`
`OQ =1 0 sqrt(3)`
`:. PQ = sqrt((PO)^(2) +(O)^(2))`
`= sqrt(10^(2)+(10 sqrt(3))^(2))= 20m`.