Midterm Review: Solving for Friction Work on a Rough Incline

  • Thread starter Thread starter Sny
  • Start date Start date
  • Tags Tags
    Forces
AI Thread Summary
To determine the work done by friction on a 5.0 kg block sliding down a 30.0° incline, the normal force must be calculated as mg*cos(theta), resulting in 42.435 N. The friction force is then found by multiplying the normal force by the coefficient of kinetic friction (0.436), yielding 18.502 N. The work done by friction is calculated as the product of this friction force and the distance (2.1 m), resulting in 38.85 J. It's important to note that the work done by friction should be expressed as a negative value due to its opposing direction to the motion. The calculations appear correct, but the negative sign is essential to reflect the nature of friction's work.
Sny
Messages
5
Reaction score
0
Doing some midterm review and I got stuck on this question. Starting from rest, a 5.0 kg block slides 2.1 m down a rough 30.0° incline. The coefficent of kinetic friction between the block and the incline is µk = 0.436. Determine the work done by the friction force between block and incline.

My first thought was mgµk times distance, since work equals force times distance, but that didn't work. I'm not sure if the fact that friction is working against mg(sin theta) has anything to do with anything. If someone could point me in the right direction, I'd appreciate it.
 
Physics news on Phys.org
friction force is the normal force times µ, on a horizontal surface, the normal force surely is equal to mg.. but your block is on an incline plane. you have to do a some calculation in order to find the normal..
and work done is Fd.. you knew that, right? :smile:
 
Normal force = mgcos (theta). (5kg)(9.8N)(cos 30) = 42.435

Force of friction = (42.435)(.436) = 18.502

Work = (Friction)(distance) = (18.502)(2.1) = 38.85

So, where'd I go wrong?
 
It looks alright...After all,the problem's asking about the work done by friction.Yyou could add a (-) sign to the final result,though,because of the negative acceleration due to friction.

Daniel.
 
TL;DR Summary: I came across this question from a Sri Lankan A-level textbook. Question - An ice cube with a length of 10 cm is immersed in water at 0 °C. An observer observes the ice cube from the water, and it seems to be 7.75 cm long. If the refractive index of water is 4/3, find the height of the ice cube immersed in the water. I could not understand how the apparent height of the ice cube in the water depends on the height of the ice cube immersed in the water. Does anyone have an...
Thread 'Variable mass system : water sprayed into a moving container'
Starting with the mass considerations #m(t)# is mass of water #M_{c}# mass of container and #M(t)# mass of total system $$M(t) = M_{C} + m(t)$$ $$\Rightarrow \frac{dM(t)}{dt} = \frac{dm(t)}{dt}$$ $$P_i = Mv + u \, dm$$ $$P_f = (M + dm)(v + dv)$$ $$\Delta P = M \, dv + (v - u) \, dm$$ $$F = \frac{dP}{dt} = M \frac{dv}{dt} + (v - u) \frac{dm}{dt}$$ $$F = u \frac{dm}{dt} = \rho A u^2$$ from conservation of momentum , the cannon recoils with the same force which it applies. $$\quad \frac{dm}{dt}...
Back
Top