Question

A stone is dropped into a river from a bridge 46.5 m above the water. Another stone is thrown vertically down 1.28 s after the first is dropped. Both stones strike the water at the same time. What is the initial speed of the second stone ?

Answer 1

`17 ms^-1`

Explanation:

Suppose, the `2` nd stone was thrown with a velocity of `u` downwards,if it took time `t` to reach the height of the bridge,then we can write,

`46.5 =ut + 1/2 g t^2` ....1 (using, `s=ut+1/2g t^2`)

now,if the 1st stone after dropping(i.e it had no initial velocity) took time `t'` to reach the height of the bridge then,

`46.5 = 1/2 g t'^2`

Given, `t'-t=1.28`

So,comparing the above three equations we can write,

`ut + 1/2 g t ^2 = 1/2 g (t+1.28)^2`.....2

now,solving equation 1 and 2 we get, `u=17 ms^-1`