How much mass is needed to prevent an object from sliding down a ramp

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To prevent an 80 kg object from sliding down a 40° ramp, the static friction coefficient of 0.507 is insufficient given the forces involved. Calculations show that the friction force cannot counteract the gravitational force acting on the object, leading to a negative mass requirement for the sandbags, indicating that the setup is unfeasible. The discussion highlights that the static friction between the object and the ramp is not provided, complicating the analysis. It is concluded that the angle of the ramp exceeds the critical angle for static friction, meaning the object will slide regardless of the sandbags. Therefore, the scenario presented is effectively a trick question as the necessary conditions for equilibrium cannot be met.
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Homework Statement


An 80 kg object is on top of a 40°ramp and held by a box that is filled with sand bags. Each sand bag has a mass of 12 kg, the static friction coefficient between the box and the ramp is .507. What is the least amount of sand bags needed to prevent the object from sliding.


Homework Equations


F,net,,x,object = 0 = F(box) - F(grav,x)
F(box) = F(grav,x,obj)

F,net,box = friction - F(object) - F(grav,x,box)
friction = μ(s)mgcos(40°)
F(grav,x,box) = mgsin(40°)
F(object) = mg(sin°40)


The Attempt at a Solution



F(box) = F,grav,x,obj = 504 N

F,net,box = friction - F(obj) - F,grav,x,box
= > μ(s)mg(cos40) - 504 - mg(sin40) = 504
=> m[μ(s)gcos40 - gsin40] = 1008
=> m = 1008/(-2.49) = -404 kg ??

so lost
 
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Is there no friction between the 80kg object and the ramp?
 
This looks like a trick question(providing all the data is correct).

Perhaps if you calculate the net force acting on the box parallel to the ramp, completely disregarding the 80kg body, you'll see why.
 
There is no information regarding static friction between the object and ramp..

If i disregard the object and focus on the box that is on the ramp, wouldn't the net force be 0 with friction and F,g,x cancelling each other out if it does not move?
 
As bandersnatch pointed out, just do a N2L for the box with the sand bags and mass M, ignore the 80kg object, and see what happens.
 
F box = friction - F,gx --> u(s)mgcos40 - mgsin40 = 0 --> factor out m --> m = 0??
 
If you factor out the m (and g) from your final equation you get
##mg(\mu_{s}cos(40) - sin(40)) = ma = 0##
If you plug in your known values, what does that tell you? (you're on the right track, just think about the implications)

Try dividing.
 
divide out m and your left with a negative acceleration meaning that box is moving meaning friction would not keep the box up on the ramp no matter what?
 
Looks that way.
 
  • #10
Basically yea.

##\mu_{s}\text{cos}(40)## is always less than ##\text{sin}(40)## for the given value of mu s.
 
  • #11
I calculate that there is an answer only when Θ < 26.885°.
 
  • #12
That could be, I didn't go that far, but you need mu s cos theta >= sin theta which doesn't happen at 40 degrees.
 

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