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 the velocity of bullet when it comes out of block, if block rises to height `0.2 m` after collision?A. `200 ms^(-1)`B. `150 ms^(-1)`C. `400 ms^(-1)`D. `300 ms^(-1)`

A bullet of mass `20 g` and moving with `600 m/s` collides with a bloc

1.	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 the velocity of bullet when it comes out of block, if block rises to height `0.2 m` after collision?A. `200 ms^(-1)`B. `150 ms^(-1)`C. `400 ms^(-1)`D. `300 ms^(-1)`
Answer» Correct Answer - A Velocity of block just after collisioin = sqrt(2gh)` `=sqrt(2 xx 10xx 0.2)` `2ms^(-1)` Now applying conservation of linear momentum just before and just after collision. `0.02 xx 600 = 4 xx2+0.02xxv` `v=200 ms^(-1)`

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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 the velocity of bullet when it comes out of block, if block rises to height `0.2 m` after collision?A. `200 ms^(-1)`B. `150 ms^(-1)`C. `400 ms^(-1)`D. `300 ms^(-1)`

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