A body is projected up a smooth inclined plane (length = 20√2m ) with velocity u from the point M as shown in the figure. The angle of inclination is 45∘ and the top is connected to a well of diameter 40 m. If the body just manages to cross the well, what is the value of v
At point N angle of projection of the body will be 45∘. Let velocity of projection at this point is v. If the body just manages to cross the well then
Range = Diameter of well
v2 sin 2 θg=40 [As θ=45∘]v2=400 ⇒ v=20 m/s
But we have to calculate the velocity (u) of the body at point M.
For motion along the inclined plane (from M to N)
Final velocity (v) = 20 m/s, acceleration (a) = −g sin α=−g sin 45∘, distance of inclined plane (s) = 20√2m
(20)2=u2−2 g√2.20√2 [Using v2=u2+2as]u2=202+400⇒ u=20√2m/s.