A balloon starts rising upwards with constant acceleration $15 {m/s}^{2}$ and after $10 s$ , a packet is dropped from it. The packet reaches the ground after $t_{0} sec$ . Determine the value of $t_{0}$ (in sec). Take $g = 10 {m/s}^{2}$ and $\sqrt{15} = 3.87$ .

Question

A balloon starts rising upwards with constant acceleration -a- and after time to second- a packet is dropped from it which reaches ground after t seconds of dropping- Determine value of t-

Toppr Admin · Accepted Answer

Velocity of packet when dropped will be same as velocity of balloon ,but as its acceleration becomes g downward,

velocity of balloon after time t will be

$v = u + a \times 2$

since u=0

$v = a \times 2$

and distance travelled by balloon will be

$s = u \times t + \frac{1}{2} \times a \times t^{2}$

$s = 0 + \frac{1}{2} \times a \times 4$

$s = 2 a$

so velocity of packet will also be same
for packet
$u_{i n i t i a l} = 2 a$ $a = - g$ . $t i m e = t$ and $s = - 2 a$

$s = u \times t + \frac{1}{2} \times a \times t^{2}$

$- 2 a = 2 a \times t + \frac{1}{2} \times - g \times t^{2}$

solving above quadratic equation

$t = \frac{a + \sqrt{a^{2} + 8 a g}}{2 g}$

this is the time required for the packet to reach ground.

A balloon starts rising upwards with constant acceleration "a" and after time to second, a packet is dropped from it which reaches ground after t seconds of dropping. Determine value of t.