Question #287736

Two men, of mass 100 kg each, stand on a cart of mass 300 kg. The cart can roll with negligible friction along a north-south track, and everything is initially at rest. One man runs towards the north and jumps off the cart at a speed of 5.0 m/s, relative to the cart. After he has jumped, the second man runs towards the south and jumps off the cart, again with a speed of 5.0 m/s relative to the cart. Calculate the speed and direction of the cart after both men have jumped off. (6 marks)


1
Expert's answer
2022-01-18T09:35:05-0500

In this problem, we need conservation of momentum. After the first jump:


0=mv+(m+M)uu=mvm+M, u=1005100+300=1.25 m/s (1.25 m/s South).0=mv+(m+M)u→u=-\dfrac{mv}{m+M},\\\space\\ u=-\dfrac{100·5}{100+300}=-1.25\text{ m/s (1.25 m/s South)}.

After the second jump:


(M+m)u=m(v)+Mvc, vc=(M+m)u+mvM, vc=(300+100)(1.25)+1005300=3.33 m/s.(M+m)u=m(-v)+Mv_c,\\\space\\ v_c=\dfrac{(M+m)u+mv}{M},\\\space\\ v_c=\dfrac{(300+100)(-1.25)+100·5}{300}=3.33\text{ m/s}.


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Good work..thanks to the expert
United Kingdom #333261 on Nov 2022