54,601 views
36 votes
36 votes
How much work did the movers do (horizontally) pushing a 43.0-kg crate 10.4 m across a rough floor without acceleration, if the effective coefficient of friction was 0.60

User Joyston
by
3.0k points

1 Answer

21 votes
21 votes

The crate is in equilibrium. Newton's second law gives

F (vertical) = n - mg = 0

F (horizontal) = p - f = 0

where

n = magnitude of the normal force

mg = weight of the crate

p = mag. of push exerted by movers

f = mag. of kinetic friciton, with f = 0.60n

It follows that

p = f = 0.60mg = 0.60 (43.0 kg) g = 252.84 N

so that the movers perform

W = p (10.4 m) ≈ 2600 J

of work on the crate. (The total work done on the crate, on the other hand, is zero because the net force on the crate is zero.)

User Akshay Komarla
by
3.0k points