A man in a balloon rising vertically with an acceleration of 4.9m/s2 releases a ball 2s after the balloon is let go from the ground. The greatest height above the ground reached by the ball is (g=9.8m/s2).
A
14.7m
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B
19.6m
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C
9.8m
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D
24.5m
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Solution
The correct option is A14.7m By using first equation of motion, velocity of balloon after 2s will be v=u+at ⇒v=4.9×2(∵u=0) ⇒v=9.8m/s
Height of the balloon at t=2s is given by s=ut+12at2 ⇒s=12×4.9×4 =9.8m
At the time of release, velocity of ball will same as that of balloon ⇒vball=9.8m/s (Upwards)
Further height achieved by the ball after the release is given by v2−u2=2gh ⇒u22g=h (∵ final velocity is 0 at maximum height) ∴h=4.9m ∴ Maximum height of the ball from the ground =hmax=9.8+4.9=14.7m