Mechanics question (beginner level)

  • Thread starter Thread starter trew
  • Start date Start date
  • Tags Tags
    Mechanics
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
10 replies · 3K views
trew
Messages
19
Reaction score
0
Homework Statement
Find acceleration of the box
Relevant Equations
coefficient of friction and
m1problem.JPG


I'm okay with the concept of resolving into two components.

BUT, with re: to resolving perpendicular to the acceleration, I don't understand how 25cos80 comes into?

Surely it should be included when I'm resolving in the direction of the acceleration?
 
on Phys.org
Don't forget that cos(80) = sin(10). Sine and cosine are co-functions.
 
  • Like
Likes   Reactions: trew
Doc Al said:
Don't forget that cos(80) = sin(10). Sine and cosine are co-functions.
haruspex said:
The component of the 25N in the direction of acceleration would be 25 cos(10). This is the other component.

Thanks for your help so far but tbh I'm still lost.

Here's what I've done so far:
WhatsApp Image 2019-03-28 at 16.50.54.jpeg

So I've resolved the first part into 2gsin10 and 2gcos10 but after looking at the problem for the past hour I still can't see how I can break down the 25N into two components.
 
trew said:
I still can't see how I can break down the 25N into two components.
Draw a similar triangle for that 25N force. The force acts horizontally: you want its components perpendicular and parallel to the incline. What angle does the force make with the incline?
 
  • Like
Likes   Reactions: trew
Doc Al said:
Draw a similar triangle for that 25N force. The force acts horizontally: you want its components perpendicular and parallel to the incline. What angle does the force make with the incline?

Ok so I did that and this is what I got:
WhatsApp Image 2019-03-28 at 17.15.02.jpeg

so I can't see how I would still get 25cos10 for the hypotenuse side? Or have I done this triangle wrong?
 
trew said:
Or have I done this triangle wrong?
Yes, the triangle is wrong. The 25N force must be the hypotenuse of the right triangle. (The components will be the shorter sides.)
 
  • Like
Likes   Reactions: trew
Doc Al said:
Yes, the triangle is wrong. The 25N force must be the hypotenuse of the right triangle. (The components will be the shorter sides.)

Ok I'm back a day later and I still don't get it o_O

I looked at this video:
which has pretty much the same question and I still can't visualise the triangle with the 25N force being the hypotenuse.

I've tried many combinations but I can't form a triangle with the 25N and it's two components.
 
Doc Al said:
Yes, the triangle is wrong. The 25N force must be the hypotenuse of the right triangle. (The components will be the shorter sides.)

Also, I like using sin0=opp/hyp and cos0=adj/hyp to work out these forces but since I can't see how that triangle is formed I can't use this method.

For me it's the best method since I can learn what's going intuitively as opposed to assuming that cos is associated with the x-direction and sin with the y-direction.
 
trew said:
Also, I like using sin0=opp/hyp and cos0=adj/hyp to work out these forces but since I can't see how that triangle is formed I can't use this method.
Nothing wrong with using a right triangle to find the components. Here's a diagram for a similar problem (that I found on the web). Perhaps it might inspire you:
240982

In that diagram, the applied force Fa is horizontal just like in your problem. (See if you can find the correct right triangle.)

trew said:
For me it's the best method since I can learn what's going intuitively as opposed to assuming that cos is associated with the x-direction and sin with the y-direction.
Good! Never do things blindly as you can easily make a mistake.

Nonetheless, as long as the angle Θ is with respect to some axis (whatever that is in your problem), then FcosΘ will be the component parallel to that axis.