Question

A body is projected vertically upwards. The times corresponding to height h while ascending and while descending are $t_1$ and $t_2$, respectively. Then, the velocity of projection will be(take g as acceleration due to gravity).

• A. $\frac{g\sqrt{t_1{t}_2}}{2}$
• B. $\frac{g(t_1+t_2)}{2}$
• C. $g\sqrt{t_1{t}_2}$
• D. $g\frac{t_1{t}_2}{(t_1+t_2)}$

Answer 1

Answer: (B)

$\frac{g(t_1+t_2)}{2}$

Let v be initial velocity of vertical projection and t be the time taken by the body to reach a height h from ground.
Here, $u=u,a=-g,s=h,t=t$
Using, $s=ut+\frac{1}{2}a{t}^2$, we have
$h=ut+\frac{1}{2}(-g)t^2$ or $g{t}^2-2ut+2h=0$
$\therefore t=\frac{2u\pm \sqrt{4u^2-4g\times 2h}}{2g}=\frac{u\pm \sqrt{u^2-2gh}}{g}$
It means t has two values, i.e.,
$t_1=\frac{u+\sqrt{u^2-2gh}}{g}$
$t_2=\frac{u-\sqrt{u^2-2gh}}{g}$
$t_1+t_2=\frac{2u}{g}$ or $u=\frac{g(t_1+t_2)}{2}$.