Calculating the Threshold Mass for Static Friction in a String System

In summary: Since the hanging mass is not moving, it has zero mass, and so the final answer is that anything greater than this mass will accelerate the first box from rest.
  • #1
London Kngiths
17
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I missed the section on static friction and I can't get this question. Can someone help me out?


What mass can you hang onto the string so that the 0.8kg box will just begin to move?

The 0.8kg box is sitting on a flat surface with a coefficient of friction of 0.50. This box is attached to a string which extends in a straight line but then is attached to a wall 45 degrees above the horizontal. At the point where the string begins to rise a strand of string is attached which holds the second mass.
 
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  • #2
The equation for static friction is [tex]F_f=\mu_s\\F_n[/tex]

For the box (mass1) to start to move, Ft>Ff. So what you must do is find the Ff using the above equation (remember, Fn has the same magnitude as Fg since the box is at rest in the y-direction). Once you have calculated Ff, you know that any Ft with a greater magnitude than the calculated Ff will cause the Box to accelerate, as I said above. You then calculate the mass of the hanging mass using an Ft = Ff (the one you calculated), and your final answer will be that anything greater than this mass will accelerate the first box from rest.
 
  • #3
But does the string hanging at a 45 degree angle, on the other side affect the result.

Calculating Ff of 0.8kg mass

Fg = mg
Fg = (0.8)( 9.8)
Fg = 7.84N

Fn=Fg So, Ff = uFn

Ff = (0.5)(7.84)
Ff = 3.92N

After that I'm stumped. When the box starts to move Fnet on the 0.8kg box is 0 right?
 
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  • #4
Yes, it does affect it. The string attaching the hanging mass to the wall exerts half of its force horizontally and half of its force vertically (If the tension inbetween the wall and second mass is Ft2, Ft2 sin 45 and Ft2 cos 45 are the same). We want Ft2 to be at the threshold between a system which is moving, and one which is not. So you can set the x-component of Ft2 to Ft, and then solve for Ft2. Since we know that mass2 is not moving up or down before mass1 starts moving, we can also assume that the y-component of Ft2 is the same as Fg2 (force of gravity on mass2). We can set them equal, and solve for the mass of mass2.
 

FAQ: Calculating the Threshold Mass for Static Friction in a String System

What is static friction of a string?

The static friction of a string refers to the force that opposes the motion between two objects in contact, where one object is a string. It is caused by the interlocking of the microscopic irregularities on the surfaces of the objects.

How is static friction of a string different from kinetic friction?

Static friction occurs when two objects are not moving relative to each other, while kinetic friction occurs when there is relative motion between the two objects. In the case of a string, static friction occurs when one end of the string is held in place, while kinetic friction occurs when the string is pulled or moved.

What factors affect the static friction of a string?

The static friction of a string is affected by the nature of the surfaces in contact, the force pressing the surfaces together, and the roughness of the surfaces. The type of material the string is made of can also affect the static friction.

How is the static friction of a string measured?

The static friction of a string can be measured using a spring scale or a force sensor. The string is attached to the scale or sensor, and a force is applied to one end of the string until it starts to move. The maximum force recorded before the string starts to move is the static friction force.

How can the static friction of a string be reduced?

The static friction of a string can be reduced by using a lubricant between the surfaces in contact, using a smoother string material, or by decreasing the force pressing the surfaces together. Additionally, increasing the surface area of the string in contact with the object can also reduce the static friction.

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