A horizontal plank has a rectangular block placed on it. The plank starts oscillating vertically and simple harmonically with an amplitude of 40 cm. The block just loses contact with the plank when the latter is at momentary rest Then.

The position of momentry rest in S.H.M. is exreme position where velocity of particle is zero.

As the block loses contact with the plank at this position i.e normal force become where accleration of the block will be g downwards.
`:. omega^(2)A = g rArr omega^(2) = (10)/(0.4) = 25 rArr omega = 5 rad//s`
There period `T = (2pi)/(omega) = (2pi)/(5)s`
Acceleration in `S.H.M.` is given by ` a = omega^(2)x`
From the figrue we an see that, At lower extreme acceleration is g upwards
`:. N - mg = ma rArr N = m(a + g) = 2mg`
At halfway up, acceleration is `g//2` downwards
`:. mg - N = ma rArr N = m (g- g/2) = 1/2 mg`
At halfway down acceleration is `g//2` upwards
`:. N - mg = ma rArr N = m (g+g/2) = 3/2 mg`