Dynamics Question involving Tension (Work Provided)

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A tree limb exerts a downward force of 137 N on a barbed wire fence, with the left section of the wire at a 15° angle sustaining a tension of 447 N. The discussion emphasizes that while the vertical forces must balance, the horizontal components of tension on both sides of the wire must also be equal due to equilibrium. The tension on the right side can be determined by analyzing the components of the known tension and applying equilibrium conditions. It is clarified that the magnitudes of tension on both sides are not necessarily equal, but their horizontal components must be the same. Understanding these principles is crucial for solving the problem effectively.
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Homework Statement



During a storm, a tree limb breaks off and comes to rest across a barbed wire fence at a point that is not in the middle between two fence posts. The limb exerts a downward force of 137 N on the wire. The left section of the wire makes an angle of 15° relative to the horizontal and sustains a tension of 447 N. Find the magnitude and direction of the tension that the right section of the wire sustains.

Homework Equations


The Attempt at a Solution



The question is, where do I go from here. If the y component of the tension is the same for both sides of the wire, is there an equation i can set up to find the tension on right side? I wondered this, but I don't have an angle for the right side of the wire.
 

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suxatphysix said:
If the y component of the tension is the same for both sides of the wire, is there an equation i can set up to find the tension on right side? I wondered this, but I don't have an angle for the right side of the wire.
You don't need the angle: solve for the components of the unknown tension. (Once you have the components, then you can figure out the angle.)

Since the branch is in equilibrium, what must the net force be on it? That's the equation you need.
 
so the sum of all the forces must equal 0 right? So in the y axis, 137N = 0

T=W ?
 
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Doc Al said:
You don't need the angle: solve for the components of the unknown tension. (Once you have the components, then you can figure out the angle.)

Since the branch is in equilibrium, what must the net force be on it? That's the equation you need.

I thought about what you said for a long time. I still can't figure it out. Can I have some more help?
 
The vertical force on the wire must equal the weight of the branch (137N). The horizontal forces on each side must be the same because the branch is not moving sideways.

What is the horizontal force on the side you do know the angle of?

The tension in the wire isn't necessarily the same on both sides if the branch is not smooth.
 
mgb_phys said:
The vertical force on the wire must equal the weight of the branch (137N). The horizontal forces on each side must be the same because the branch is not moving sideways.

What is the horizontal force on the side you do know the angle of?

The tension in the wire isn't necessarily the same on both sides if the branch is not smooth.

That would mean that the magnitude of the tension on both sides is equal, according to what you are saying. Is this true? Is there something I'm missing? Is this a trick question?
 
Yes I think your right, I was assuming that if the branch had friction with the wire then the tension could be different but the horizontal tension must be the same and so the overall magnitude must be the same.

You will have to write the angle in terms of the relative lengths of the two lengths of wire.
 
suxatphysix said:
That would mean that the magnitude of the tension on both sides is equal, according to what you are saying. Is this true? Is there something I'm missing? Is this a trick question?
The magnitude of the tension on both sides is not necessarily equal--but the horizontal components of the tensions must be equal (and opposite).

Now you know the horizontal component of the right wire tension. All that's left is to figure out the vertical component: Set up the equation making the sum of the vertical components of all three forces equal to zero and solve for it.

This is not a trick question, just a standard application of the conditions for equilibrium.
 
cool thanks, got the answer
 
  • #10
Sorry - the TOTAL downward force on the wire is 137N.
The proportion of this force on the two halfs of the wire is of course different.

This is why I should always draw diagrams - even for simple homework problems!
 
  • #11
One can solve for the tension using the cosine rule.
 

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I didnt understand any of that. Are the horizontal components of the tension equal? Or are the vertical components of the tension equal?
 

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