How the coefficient of static friction works

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SUMMARY

The discussion focuses on the coefficient of static friction, specifically in the context of an object on an inclined plane. The key formula derived is mg sin(θ) = μs mg cos(θ), leading to the conclusion that θ = tan-1s). Participants clarify that mg cos(θ) represents the normal force, while μs mg cos(θ) is the frictional force opposing the gravitational component mg sin(θ). This understanding is crucial for solving problems related to static friction on inclined surfaces.

PREREQUISITES
  • Understanding of basic physics concepts, particularly forces and motion.
  • Familiarity with trigonometric functions, especially sine and cosine.
  • Knowledge of the coefficient of static friction (μs).
  • Ability to manipulate and solve algebraic equations.
NEXT STEPS
  • Study the derivation of the equations of motion on inclined planes.
  • Learn about kinetic friction and how it differs from static friction.
  • Explore applications of friction in real-world scenarios, such as vehicle dynamics.
  • Investigate the effects of different materials on the coefficient of static friction.
USEFUL FOR

Students studying physics, educators teaching mechanics, and engineers involved in design and safety assessments related to friction and motion.

mvantuyl
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Not exactly a homework problem, but I'm trying to make sure I understand how the coefficient of static friction works.

Given an object on an inclined plane and a question which asks for the minimum angle at which the object will begin to slide, I know that the formula to use is:

mg sin([tex]\theta[/tex]) = [tex]\mu[/tex][tex]_{s}[/tex] mg cos([tex]\theta[/tex])

which becomes

tan[tex]^{-1}[/tex]([tex]\mu[/tex][tex]_{s}[/tex]) = [tex]\theta[/tex]

I understand that mg times the sin of the angle represents the force which is working against friction. Is mu mg times the cos of the angle equal to the normal force?
 
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Hi mvantuyl! :smile:

(have a mu: µ and a theta: θ :wink:)
mvantuyl said:
I understand that mg times the sin of the angle represents the force which is working against friction. Is mu mg times the cos of the angle equal to the normal force?

No, mgcosθ is the normal force.

So µsmgcosθ is the friction force, and mgsinθ is the component of the gravitational force which (in your terminology) is working against friction (and that's why they're equal). :smile:
 


Thank you! That clears it up for me.
 

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