A ball of mass 400 g is dropped from a height of 5 m. A boy on the ground hits the ball vertically upwards with a bat with an average force of 100 N so that it attains a vertical height of 20 m. The time for which the ball remains in contact with the bat is $[g = 10 m / s^{2}]$

0.12 s

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0.08 s

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0.04 s

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12 s

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Solution

The correct option is A 0.12 s
$v^{2} - u^{2} = 2 a s$
$u = 0$ since ball is dropped
$v = \sqrt{2 a s}$
$v_{i} = \sqrt{2 \times 10 \times 5} m / s = 10 m / s$
$p_{i} = m v_{i}$
$= 0.4 k g \times 10 m / s$
$= 4 k g m / s$
$p_{i}$ is directed downward.
$v_{f} = \sqrt{2 \times 10 \times 20} m / s = 20 m / s$
$P_{f} = 0.4 k g \times 20 m / s = 8 k g m / s$
$p_{f}$ is directed vertically upwards.
Now, impluse = change of linear momentum $\Rightarrow (- 100) \times Δ t = (- 8 - 4)$
[Force and velocity are directed upwards]
[Giving negative sign to the vertically upwards direction]
$Δ t = \frac{12}{100} = 0.12 s$

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