Forces on a crate with friction: find the normal force

Join the discussion
Ask a follow-up here, or get your own question answered by working scientists, mathematicians and engineers — people, not an autocomplete.
Real named experts · corrections over time · the nuance an AI answer skips
22 replies · 2K views
Jujubee37
Messages
22
Reaction score
4
Homework Statement
Force P (78.28 N) pulls on a crate of weight W (164 N) on a rough surface at a constant speed. The figure shows the directions of the forces that act on the crate. FN represents the normal force. The kinetic frictional force is f (51.25 N). The angle, a, is 49.1 degrees. Calculate the value of the normal force.
Relevant Equations
mg-Fsin(x)
1613252983020.png
I have attempted this problem by solving for the normal force. (16.73)(9.8)-51.25(sin)(49.1). I tried to work that out but it was incorrect because apparently the vertical force is zero. Could I get an explanation on what that means and where I should start?
 
on Phys.org
I did. (16.73)(9.8)-51.25(sin)(49.1)= 125.21 N
 
BvU said:
Are these even in the same direction ?
I wouldn't know. All I know is that the vertical net force is zero and the normal force is one of the vertical forces. I worked this out two ways. one with sin and the other with cos because those are the only equations that I have involving an angle.
 
BvU said:
Huh ? Isn't mg vertical and 51.25 N horizontal ?

Says who ?
Lon capa the website. I don't understand this so I can't answer your questions.
 
I can't get in there, so you have to play go-between.

Is it clar to you that ##\ mg\ ##, ##\ \ P\sin a\ \ ## and ## \ N \ ## are the only vertical forces in the story ?
And if ##N## would be zero, then ##\ mg = P\sin a\ \ ## would follow ?

Just to humor me :wink: , calculate the net horizontal force ...

##\ ##
 
BvU said:
I can't get in there, so you have to play go-between.

Is it clar to you that ##\ mg\ ##, ##\ \ P\sin a\ \ ## and ## \ N \ ## are the only vertical forces in the story ?
And if ##N## would be zero, then ##\ mg = P\sin a\ \ ## would follow ?

Just to humor me :wink: , calculate the net horizontal force ...

##\ ##
I still do not understand what I have to do. Solve for the horizontal? or what?
 
BvU said:
Why not just do it ?

##N## can't be zero: ##mg## is much bigger than ##P\sin a##.
Do what? I really do not understand where I am supposed to start. I have no understanding of this problem. This is what the hint was for this problem.

The net vertical force here is zero. The normal force is one of the vertical forces. Others are weight and part of the pulling force.
 
Aha ! It says the NET vertical force is zero. There is no acceleration in the vertical direction. So you have ##mg## down, ##P\sin a## and ##N## both up. And the sum is zero.

The only difference with your working is that you used 51.25 instead of 78.28 N for ##P##.
 
Jujubee37 said:
... I really do not understand where I am supposed to start. I have no understanding of this problem.

Not being pulled in any direction, the block pushes the ground down with force W of magnitude 164 N and there is no kinetic frictional force f to talk about.
Do you understand that?
 
i got the answer already. 16.73 is the mass. I had to solve for it
 
Jujubee37 said:
i got the answer already. 16.73 is the mass. I had to solve for it
May I ask what answer you got?
Do you now understand the purpose of this problem?
 
Lnewqban said:
May I ask what answer you got?
Do you now understand the purpose of this problem?
The answer I got was 104.79 N. I have practiced more problems similar to this one so I understand it now.
 
  • Like
Likes   Reactions: Lnewqban and BvU
Steve4Physics said:
@Jujubee37: You do not need to find the mass. Simply replace 'mg' by '164' (Newtons).

Have you solved the problem now, or do you still want help?
Yes I am aware now, my way got me the correct answer but yes plugging in 164 would be quicker.