A 150 kg crate, starting from rest, is pulled across a floor with a constant horizontal force of 420 N. For the first 21 m the floor is frictionless, and for the next 21 m the coefficient of friction is 0.30. What is the final speed of the crate?

Question

bobpursley · Answer

Work put into the crate: force*distance=420*42 Joules Work used by friction=150g*.3*21 KEfinal= workputintocrate-workusedonFriction. velocityfinal= sqrt(2*KEfinal/mass)

Anonymous · Answer

11.51