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A 120.0 kg crate is placed on a 15.00° frictionless slope (covered with ice). How much force must be applied along the (upward) slope to keep the crate from sliding down? [?] N
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3 votes
A 120.0 kg crate is placed on a 15.00°

frictionless slope (covered with ice). How
much force must be applied along the
(upward) slope to keep the crate from
sliding down?
[?] N

User Bharath R
by
5.3k points

1 Answer

5 votes

F = 2820.1 N

Step-by-step explanation:

Let the (+)x-axis be up along the slope. The component of the weight of the crate along the slope is -mgsin15° (pointing down the slope). The force that keeps the crate from sliding is F. Therefore, we can write Newton's 2nd law along the x-axis as

Fnet = ma = 0 (a = 0 no sliding)

= F - mgsin15°

= 0

or

F = mgsin15°

= (120 kg)(9.8 m/s^2)sin15°

= 2820.1 N

User Kitta
by
5.4k points
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