Question

A body of mass $2\text{kg}$ is thrown vertically up with kinetic energy of $500\text{J}$. What will be height at which the kinetic energy of the body becomes ${\frac{2}{3}}^{rd}$ of original value? $(g=10{\text{m/s}}^2)$

• A. $6\text{m}$
• B. $9.86\text{m}$
• C. $8.33\text{m}$
• D. $6.23\text{m}$

Answer 1

The correct option is C $8.33\text{m}$

Given $m=2\text{kg}$ and Kinetic energy $(K_i$) $=500\text{J}$
From the law of conservation of energy
$K_i+U_i=K_f+U_f$ [Here, sum of kinetic energy and potential energy will be constant ]
$\Rightarrow K_i+0=\frac{2K_i}{3}+mgh$ (Given $K_f=\frac{2K_i}{3}$ and as ground is taken as reference $U_i=0$)

$\Rightarrow \frac{K_i}{3}=mgh$
$\Rightarrow \frac{500}{3}=2\times 10\times h$
$\Rightarrow h=8.33\text{m}$