Calculate Tension of Ropes in Physics Problem | Yellow Creek Fishing Scenario

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Homework Help Overview

The problem involves calculating the tension in ropes connecting two fish, a steelhead trout and a carp, being lifted by a force. The context is set in a fishing scenario where the weights of the fish and the applied force are key components of the discussion.

Discussion Character

  • Mixed

Approaches and Questions Raised

  • Participants explore the relationship between the applied force, the weights of the fish, and the resulting tension in the ropes. There are attempts to understand how the forces interact and whether the sum of gravitational forces should be considered in calculating tension.

Discussion Status

Some participants have offered insights into the forces acting on the system, including the weight of the fish and the upward force applied. There is an ongoing exploration of how these forces contribute to the tension in the rope, with no explicit consensus reached yet.

Contextual Notes

Participants are discussing the implications of static versus dynamic situations, questioning how the forces change if the applied force exceeds the combined weight of the fish. The assumptions about the system's state and the effects of acceleration are also under consideration.

Kristin
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1. Jimmy has caught two fish in Yellow Creek. He has tied the line holding the 3.40 kg steelhead trout to the tail of the 2.34 kg carp. To show the fish to a friend, he lifts upward on the carp with a force of 77.4 N. What is the tension of the ropes connecting the steel trout and carp?

I tried calling just the Fg on the Trout as the tension (assuming that the carp is not hanging). Then I tried subtracting the Force of the trout from the force of the pull. Then I tried subtracting the Fg of both fish from the force of the pull, and nothing seems to work. What am I missing?
 
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Jimmy is applying a force of 77.4 N to the carp, and the weight (2.34 kg * g) of the carp is resisting that force. To the force, Fc, applied to the carp end of the line is what?

The weight of the trout is pulling in the opposite direction of the force applied at the other end of the line, so the tension in the line has to equal the sum of the two forces.
 
So does that mean that the sum of force of gravity of the two fish, when added to the applied upward force should be the tension in the rope?
 
Kristin said:
So does that mean that the sum of force of gravity of the two fish, when added to the applied upward force should be the tension in the rope?
Not quite.


You are correct that the force of gravity of the fish are working in the same direction.


Try this ( <---- g = gravity (-z), Up (+z) --->)


(trout) ------------------------------- (carp) - Fu
<-- Ftrout - - - - - - - - - - - - - - - - <-- Fcarp, Fu --->


Now consider the static situation where Fu balances the weight of the two fish, thus

Fu = Ftrout + Fcarp = mT g + mC g.

The only force on the line though is due to the weight of the trout, and that weight provides the tension, excluding the mass of the line or wire, thus

T = mT g = Fu - mC g

OK, now what happens when Fu > mT g + mC g?

Then both mass of trout and carp must accelerate!

The tension on the wire is still due to the opposing force of the trout, which is now given by

T = mT (g + a), where a is the acceleration of the trout and carp.
 

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