A balloon ascends with a uniform acceleration of `fm//"sec"^(2)`. At the end of t seconds a body is released from it. The time that elapses before the body reaches the ground is………

A balloon starts rising from the ground with an acceleration 2 ms^(-2) . After 5 second , a stone is released from the ballooon. Find the time taken by the stone to reach the ground after its release and total height attained by ballooon when stone reaches the ground. Take g==10 ms^(-2) .

A balloon starts rising from ground with an acceleration of 1.25 m//sec^2 . A 8 seconds a stone is released from the balloon. The maximum height from the ground reached by stone will be.

A balloon starts rising from the ground with a constant acceleration of 1.25m//s^(2) . After 8 s, a stone is released from the balloon. Find the time taken by the stone to reach the ground. (Take g=10m//s^(2) )

A balloon starts rising from the ground with an acceleration of 1.25ms^-2 . After 8 seconds, a stone is released from the balloon. After releasing, the stone will:

A balloon is ascending at the constant rate of 9.8 m//sec at a height of 98 m above the ground a packet is dropped from it. If time taken by the packet to reach the ground is (1 + sqrt(3lambda))sec . Find lambda . (Use g = 9.8 m//s^(2) )

A balloon is rising up with an acceleration of 10 m//s^(2) . A body is dropped from the balloon when its velocity is 200 m//s . The body strickes the ground in half a minute. With that velocity did the body hit the ground ? Take g=9.8m//s^(2) .