Physics Question on Escape Speed

Question

A rocket is fired upward from the earth surface such that it creates an acceleration of $19.6\, m / s ^{2}$ . If after $5\, s$ , its engine is switched off, the maximum height of the rocket from earth's surface would be

Answer 1

Solution

Speed of rocket after $5\, s$ . $v =u-g t$ $0 =u-9.8 \times 5$ $=49\, m / s$ From $h =u t-\frac{1}{2} g t^{2}$ $=0-\frac{1}{2} \times 9.8 \times(5)^{2}$ $=\frac{245}{2}\, m$ When engine is turned off $v^{2}=u^{2}-2 g h$ $0=u^{2}-2 g h$ $h=\frac{u^{2}}{2 g}=\frac{49 \times 49}{2 \times 9.8}=\frac{245}{2}\, m$ Maximum height from earth surface $=h_{1}+h_{2}=\frac{245}{2}+\frac{245}{2}=245\, m$