Question
A bullet of mass 0.062 kg traveling horizontally at a speed of 150 m/s embeds itself in a block of mass 90 kg that is sitting at rest on a nearly frictionless surface
What is the speed of the block after the bullet embeds itself in the block?
What is the speed of the block after the bullet embeds itself in the block?
Answers
conserve momentum:
.062*150 + 90*0 = (.062+90)v
v = 0.103 m/s
.062*150 + 90*0 = (.062+90)v
v = 0.103 m/s
Teri 9211
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