How Do You Calculate Mass and Friction in a Two-Block System?

In summary: T-f(kinetic)=0; T=f(kinetic); T=u(kinetic)m1*gy:F(normal)-m1*g=0; F(normal)=m1*g; f(kinetic)=u(kinetic)m1*gm2:x:T=m2g; m2g=u(kinetic)m1*gy:T=m2g; m2g=u(kinetic)m1*g
  • #1
a18c18
21
0

Homework Statement



A mass m1 on a horizontal shelf is attached by a thin string that passes over a frictionless pulley to a 2.8 kg mass (m2) that hangs over the side of the shelf 1.6 m above the ground. The system is released from rest at t = 0 and the 2.8 kg mass strikes the ground at t = 0.81 s. The system is now placed in its initial position and a 1.2 kg mass is placed on top of the block of mass m1. Released from rest, the 2.8 kg mass now strikes the ground 1.3 seconds later.
(a) Determine the mass m1.
kg

(b) Determine the coefficient of kinetic friction between m1 and the shelf.


Homework Equations



v^2=v(initial)^2-2ad
Sum F=ma
F(kinetic)=u(kinetic)mg

The Attempt at a Solution


I applied F=ma to m1 and m2 for x and y

m1:
x: T-f(kinetic)=0; T=f(kinetic); T=u(kinetic)m1*g
y: F(normal)-m1*g=0; F(normal)=m1*g; f(kinetic)=u(kinetic)m1*g

m2:
x: T=m2g; m2g=u(kinetic)m1*g

The next step would be to solve m2g=u(kinetic)m1*g for u(kinetic) or m1 but without one of these I can't find either so I am stuck here.
 
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  • #2
For some reason, you are treating the system as though the acceleration = 0. Not so. Start by calculating the acceleration for each scenario.
 
  • #3
I did calculate the accelerations actually but I wasn't sure what to do with that. I used v^2=v(initial)^2-2ad and got that the first acceleration is 1.219 and the second is .473
 
  • #4
a18c18 said:
I did calculate the accelerations actually but I wasn't sure what to do with that. I used v^2=v(initial)^2-2ad and got that the first acceleration is 1.219 and the second is .473
I'm not sure how you calculated the accelerations using that formula, since you don't have the final speeds. (I see what you did: You used v = d/t for the final speed, but that's not correct. That's the average speed, not the final speed. The final speed is twice that.)

Recalculate the accelerations, either by correcting your value for the speed or by using a different formula entirely (one that uses distance and time, which is what you are given).

You need the accelerations for use with Newton's 2nd law.
 
  • #5
Okay thank you! i found the accelerations using v=d/t and then a=change in v/t. But now I am trying to plug it into a=F(net)/m and don't see how to find this without knowing either u(kinetic) or mass. The sum of the forces would be F(normal)+F(kinetic)+tension

F(normal)=mg
F(kinetic)=u(kinetic)*F(normal)
Tension=?

I'm not sure how to find tension. I think once I do I can plug the sum of the forces into a=F(net)/m and then the masses will cancel and I can get u(kinetic)? is this correct?
 
  • #6
a18c18 said:
Okay thank you! i found the accelerations using v=d/t and then a=change in v/t.
Again, since the system is accelerating, v = d/t gives you the average speed, not the final.
But now I am trying to plug it into a=F(net)/m and don't see how to find this without knowing either u(kinetic) or mass.
The mass and μ are things you are asked to find. You're going to solve for them.
The sum of the forces would be F(normal)+F(kinetic)+tension
Make sure you sum the forces in each direction separately.

You need to apply ΣF = ma to both masses. You'll get two equations for each scenario, which you'll combine to eliminate tension.
 

FAQ: How Do You Calculate Mass and Friction in a Two-Block System?

What is friction?

Friction is a force that opposes motion between two surfaces that are in contact with each other. It is caused by the roughness of the surfaces and the interlocking of their irregularities.

How does friction affect a sliding block?

Friction between the sliding block and the surface it is on will cause a resistive force that opposes the motion of the block. This force can slow down or even stop the block's movement.

What factors affect the amount of friction on a sliding block?

The amount of friction on a sliding block is affected by the roughness of the surfaces in contact, the weight of the block, and the force pushing or pulling the block.

How can friction be reduced on a sliding block?

Friction can be reduced on a sliding block by using lubricants, such as oil or grease, between the surfaces in contact. Additionally, using smoother surfaces or applying a smaller force can also reduce friction.

Can friction ever be completely eliminated on a sliding block?

No, friction cannot be completely eliminated on a sliding block. Even with the use of lubricants or smoother surfaces, there will always be some amount of friction present between the surfaces in contact.

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