A boy standing on a stationary lift (open from above) throws a ball upwards with the maximum initial speed he can, equal to 49 m s–1. How much time does the ball take to return to his hands? If the lift starts moving up with a uniform speed of  5 m s-1 and the boy again throws the ball up with the maximum speed he can, how long does the ball take to return to his hands?

Hint: The speed of the ball will be the same when it reaches the boy's hand's but will be moving in a downward direction
Step 1: Required time will be equal to the time of flight of the ball.
 
Step 2: Find the time of flight using the relation,
T = 2ug = 2×499.8 = 10 sec.
In case, the lift starts moving up with a uniform speed of  5 m s-1, the above calculation remains the same if we take the frame of reference to the lift. The lift is a non-accelerating frame of reference.