Tug-of-war with competing decay of force equations

AI Thread Summary
In a tug-of-war scenario involving two teams of five players each, the forces exerted by the teams decay over time, modeled by exponential functions. The net force acting on the system can be expressed as Fnet = ma, where the mass is debated as either the total mass of one team or both. The discussion highlights the importance of considering friction, which affects the teams' pulling capabilities, suggesting that the problem implies varying frictional conditions for each team. Participants emphasize that the forces exerted by both teams should be equal and opposite, reflecting Newton's third law. The conversation also humorously critiques the teams' strength, linking it to the coefficient of static friction and environmental conditions.
calebs17
Messages
1
Reaction score
0

Homework Statement



Two frats compete in a tug of war. Each team has 5 players of mass 80kg each. Each person is capable of pulling with 100N of force. The force of one team decays according to F(t) = F0(e^(-t/2)) and the other, F(t) =F0(e^(-t/1)). What is the position of the (very lightweight) rope as a function of time?

Homework Equations


Fnet = ma

The Attempt at a Solution


(m)(a) =F0(e^(-t/1)) - F0(e^(-t/2)) where F0 = 500 for both team. I am not sure if the mass is simply 5*80 or double that because of the two teams. Then I suppose you could integrate this and find x from the acceleration.
 
Physics news on Phys.org
calebs17 said:
I am not sure if the mass is simply 5*80 or double that because of the two teams.
If you're not sure if ma or 2ma, you could draw a free body diagram for each team, sum the forces for each team, and then solve the equations.

Welcome to Physics Forums.

Edit: I just noticed that this post is in "Advanced Physics Homework". I'm not a mentor on this forum, but based on what I've seen, it seems like it would be better if it was posted in "Introductory Physics Homework". You may get much quicker responses there too.
 
calebs17 said:
The force of one team decays according to ...
I am not sure what is meant by this. The force of one team acting on what object? If, as the problem states, the mass of the rope is negligible, shouldn't the force exerted by team A on team B be equal and opposite to the force exerted by team B on team A at all times because the tension is the same at the two ends of the rope?

Tugs of war rely on friction to work. So, I suppose, the problem is telling us that the ground is getting more slippery as time increases but by differing amounts for each team. When you draw your FBDs as TomHart suggested, to draw them correctly, you need to take friction into account and assume that it is that friction that decays exponentially. It doesn't mater if you draw one FBD for the two teams together or separate FBDs. It should be clear what mass to use in each case.
 
kuruman said:
shouldn't the force exerted by team A on team B be equal and opposite
I agree with what you are saying. Rather than saying, "Each person is capable of pulling with 100N of force., I think the problem should have been worded: "Each person is capable of exerting a 100 N friction force on the floor as he pulls on the rope."

As a side note: 100 N = 22.5 lb. Those are some pretty wimpy frat boys. They start out weak and quickly go downhill from there.
 
  • Like
Likes TSny
TomHart said:
Those are some pretty wimpy frat boys.
Don't be so quick to condemn them as wimps. Remember, it is the force of static friction that counts. The maximum force of static friction that the ground can exert on one of these boys is the 100 N. This means that the coefficient of static friction is μs = Fmax/mg = 100 N/800 N = 0.125. Pretty slippery. Probably, the boys are barefoot on linoleum and it is raining thus getting even more slippery.
 
  • Like
Likes TomHart and TSny
kuruman said:
Probably, the boys are barefoot on linoleum and it is raining thus getting even more slippery.
I'm sorry, but with all due respect, I have to disagree. I think they are outside on a grass field wearing metal cleats. Wimps!
 

Thread 'Rolling without slipping on a curved surface'

Kindly see the attached pdf. My attempt to solve it, is in it. I'm wondering if my solution is right. My idea is this: At any point of time, the ball may be assumed to be at an incline which is at an angle of θ(kindly see both the pics in the pdf file). The value of θ will continuously change and so will the value of friction. I'm not able to figure out, why my solution is wrong, if it is wrong .
View full post »

Thread 'Struggling to understand the concept of this question (ice cube in water optics question)'

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...
View full post »

Similar threads

What Is the Final Velocity of a Particle Under a Time-Dependent Force?
Replies
7
Views
2K
What is the tension force in a tug-of-war between two teams?
Replies
6
Views
5K
Calculating the work done from an equation for variable force
Replies
2
Views
2K
What is the momentum of the pellet?
Replies
9
Views
3K
Tension in a String/Rope (tug-of-war)
Replies
14
Views
3K
Tug of war.... Finding oppostite person's force
Replies
20
Views
2K
Tension in the rope of tug of war
Replies
1
Views
5K
Pressing a Block against a Wall
Replies
12
Views
2K
Which Rope Sustains Greater Tension: Tree or Tug-of-War?
Replies
2
Views
6K
Solve the differential equation F=F0+kv
Replies
5
Views
2K

Hot Threads

Recent Insights

Back
Top