Answer to Question #287736 in Physics for Robbert

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)

Expert's answer

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

"0=mv+(m+M)u\u2192u=-\\dfrac{mv}{m+M},\\\\\\space\\\\\nu=-\\dfrac{100\u00b75}{100+300}=-1.25\\text{ m\/s (1.25 m\/s South)}."

After the second jump:

"(M+m)u=m(-v)+Mv_c,\\\\\\space\\\\\nv_c=\\dfrac{(M+m)u+mv}{M},\\\\\\space\\\\\nv_c=\\dfrac{(300+100)(-1.25)+100\u00b75}{300}=3.33\\text{ m\/s}."