A bullet of mass 20 g and moving with 600 m/s collides with a block of mass 4 kg hanging with the string. What is velocity of bullet when it comes out of block, if block rises to height 0.2 m after collision? (Take g=10m/s2)
A
200m/s
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B
150m/s
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C
400m/s
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D
300m/s
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Solution
The correct option is A200m/s Conservation of linear momentum holds here, According to conservation of linear momentum, m1v1=m1v+m2v2 where v is the velocity of bullet after the collision and v2 is the velocity of block. ∴0.02×600=0.02v+4v2 From the conservation of mechanical energy, m2gh=12m2v22 ⇒v2=√2gh =√2×10×0.2 =2m/s ∴0.02×600=0.02v+4v2 ⇒0.02v=12−8 ∴v=40.02 v=200 m/s