Tension of ropes when laying on a hammock

  • Thread starter Thread starter Nathan777
  • Start date Start date
  • Tags Tags
    Tension
Join the discussion
Ask a follow-up here, or get your own question answered by working scientists, mathematicians and engineers — people, not an autocomplete.
Real named experts · corrections over time · the nuance an AI answer skips
4 replies · 11K views
Nathan777
Messages
4
Reaction score
0

Homework Statement



A 50.0 kg person takes a nap in a backyard hammock. Both ropes supporting the hammock are at an angle of 15° above the horizontal. Find the tension in the ropes.

Homework Equations



T=mg, F=ma, T= (Tcos15°)+(Tsin15°)


The Attempt at a Solution



What I did was I started with X and Y coordinates and I figured the coordinates in the X direction would cancel out to be 0 because in one X direction it is positive and the other is negative so the total tension would be the tension in the y direction multiplied by two. What I did was I got the total tension as ƩF= 2Tsin15° which is nowhere near the correct answer in the answer key. The correct answer is 948N which would be the cos of 15 degrees and not the sin. I don't understand how you know which one to us because if the ropes are 15 degrees above the horizontal I figured the x coordinates would cancel out.
 
on Phys.org
Nathan777 said:

Homework Statement



A 50.0 kg person takes a nap in a backyard hammock. Both ropes supporting the hammock are at an angle of 15° above the horizontal. Find the tension in the ropes.

Homework Equations



T=mg, F=ma, T= (Tcos15°)+(Tsin15°)


The Attempt at a Solution



What I did was I started with X and Y coordinates and I figured the coordinates in the X direction would cancel out to be 0 because in one X direction it is positive and the other is negative so the total tension would be the tension in the y direction multiplied by two. What I did was I got the total tension as ƩF= 2Tsin15° which is nowhere near the correct answer in the answer key. The correct answer is 948N which would be the cos of 15 degrees and not the sin. I don't understand how you know which one to us because if the ropes are 15 degrees above the horizontal I figured the x coordinates would cancel out.

What I did was I got the total tension as ƩF= 2Tsin15°

seems OK.

You do need to transpose to find T of course.

T = ƩF/2sin15° where ƩF is of course the weight of the person: 50*9.8
 
PeterO said:
What I did was I got the total tension as ƩF= 2Tsin15°

seems OK.

You do need to transpose to find T of course.

T = ƩF/2sin15° where ƩF is of course the weight of the person: 50*9.8

Thank you so much. I don't know where I went wrong with that one.
 
Nathan777 said:
Thank you so much. I don't know where I went wrong with that one.

Note that the first line of my previous post was a "cut and paste" from your original post, so you started out OK.
 
PeterO said:
Note that the first line of my previous post was a "cut and paste" from your original post, so you started out OK.

Yes but I figured out the answer with that specific equation. I guess I just didn't think of dividing it out. Error on basic Algebra.