A bullet of mass $20 g$ moving with a velocity of $100 m s^{- 1}$ strikes a wooden block of mass $80 g$ at rest and gets embedded into it. Calculate the velocity of the combined system.

10 ms^-1

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30 ms^-1

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20 ms^-1

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5 ms^-1

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Solution

The correct option is C
20 ms^-1

Given: mass of bullet $m_{1} = 20 g = 0.02 k g$ , mass of wooden block $m_{2} = 80 g = 0.08 k g$ , initial velocity of bullet $u_{1} = 100 m s^{- 1}$ , the block is at rest its initial velocity $u_{2} = 0 m s^{- 1}$
Since the block and bullet moves with a common velocity later, let the common velocity of the block and bullet system as $v$
By applying law of conservation of momentum,

Initial momentum of the system = Final momentum of the system

$(0.020 \times 100) + (0.080 \times 0) = v \times (0.020 + 0.080)$
$\Rightarrow 2 = v \times 0.1$
$\Rightarrow v$ = $20 m / s$ .

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