Question

A stone is dropped from a building of height $h$ and it reaches after $t$ seconds on earth. From the same building if two stones are thrown, one upwards and other downwards, with the same velocity $u$ and they reach the earth surface after $t_1$ and $t_2$ seconds respectively, then

• A. $t=t_1-t_2$
  
• B. $t=\frac{t_1+t_2}{2}$
  
• C. $t=\sqrt{t_1{t}_2}$
  
• D. $t=t_1^2{t}_2^2$
  

Answer 1

The correct option is C $t=\sqrt{t_1{t}_2}$


If a stone is dropped from height $h$, then $h=\frac{1}{2}g{t}^2...\left(i\right)$
If a stone is thrown upwards with velocity $u$, then $h=-u{t}_1+\frac{1}{2}g{t}_1^2...\left(ii\right)$
If a stone is thrown downwards with velocity $u$, then $h=u{t}_2+\frac{1}{2}g{t}_2^2...\left(iii\right)$
From $\text{(}i)$ $\text{(}ii)$ and $\text{(}iii)$, we get
$-u{t}_1+\frac{1}{2}g{t}_1^2=\frac{1}{2}g{t}^2...\left(iv\right)$
$u{t}_2+\frac{1}{2}g{t}_2^2=\frac{1}{2}g{t}^2...\left(v\right)$
Dividing $\text{(}iv)$ and $\text{(}v)$, we get
$\frac{-u{t}_1}{u{t}_2}=\frac{\frac{1}{2}g(t^2-t_1^2)}{\frac{1}{2}g(t^2-t_2^2)}$
or $-\frac{t_1}{t_2}=\frac{t^2-t_1^2}{t^2-t_2^2}$
By solving, $t=\sqrt{t_1{t}_2}$