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Question

A bomb at rest explodes into three equal fragments. Two fragments fly off at right angles with velocity 12 m/s and 9 m/s. If the explosion process occurs in 0.1 s, find out the average force acting on the third particle, if total mass of the bomb is 12 kg.

A
600 N
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B
60 N
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C
15 N
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D
1200 N
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Solution

The correct option is A 600 N
Bomb explodes into three equal parts, therefore mass of each fragment will be 123=4 kg.


Let the velocities of the first two fragments be 12^i and 9^j. Let the velocity of third component be v.

Applying momentum conservation :
Initial momentum = Final monentum
0=4×12^i+4×9^j+4v
v=12^i9^j
Therefore, speed of the third particle =|v|=122+92=15 m/s

Average force acting on the third particle =change in momentum time
=m×|v|0t=4×150.1=600 N

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