How to calculate work done by friction on a falling feather?

AI Thread Summary
The discussion revolves around calculating the work done by friction on a falling feather, specifically a 1.2g feather dropped from 1.5m that reaches terminal velocity. The correct calculation yields a work value of W = -0.016 J, indicating that friction does negative work, opposing the feather's motion. Participants clarify the use of the equation W = U + K, emphasizing that moving the work term can lead to confusion and incorrect signs. There is also a comparison with a different problem involving a child on a slide, highlighting the importance of correctly applying the work-energy principle. Ultimately, the conversation underscores the significance of understanding the relationship between forces and displacement in determining the sign of work done.
petern
Messages
89
Reaction score
0
[SOLVED] Finding Work Done By Friction

A 1.2g feather is dropped from a height of 1.5m and immediately reaches terminal velocity. If the time to fall is 0.95 s and force of the air resistance on the feather is constant, how much work was done on the feather by friction? Answer: W = -0.016 J

I use the equation W = U + K which turns into W = Uf - Ui + Kf - Ki.
Then Uf + Kf = Ui + Ki + W. I know I have to bring the W to the other side but I don't know why. Does anyone have an explanation?

Then the equation becomes Ui = Kf + W because there's no Ki and Uf.

Then substitute mgh for Ui and 1/2mv^2 for Kf which makes the equation:
W = mgh - 1/2mv^2 but the answer turns out to be positive rather negative. I switch the mgh and 1/2 mv^2 and get a slightly different number it it's right. What am I doing wrong?
 
Last edited:
Physics news on Phys.org
petern said:
A 1.2g feather is dropped from a height of 1.5m and immediately reaches terminal velocity. If the time to fall is 0.95 s and force of the air resistance on the feather is constant, how much work was done on the feather by friction? Answer: W = -0.0016 J

how sure are you that the above answer is correct?
 
olgranpappy said:
how sure are you that the above answer is correct?

I'm very sure that it's correct since we've been doing problems since the beginning of the school year and the answer given has always been correct except once. Is it not possible for work to be a negative number?
 
petern said:
I'm very sure that it's correct since we've been doing problems since the beginning of the school year and the answer given has always been correct except once. Is it not possible for work to be a negative number?

it is possible for work to be negative... and you should be able to tell right away whether your answer for the work should be positive of negative--are the force doing the work and the displacement in the same direction or in opposite directions?

also, what I meant in my previous post is: are you sure that you wrote the correct number of decimal places. Are you sure you didn't mean: "-0.016" instead of "-0.0016".
 
Oh, it's suppose to be -0.016. Just fixed it in the original post. I don't understand why I had to switch the mgh and the 1/2mv^2 in order for it to be negative. Also, why did I have to move the W to the other side?
Then Uf + Kf = Ui + Ki + W. I know I have to bring the W to the other side but I don't know why
 
petern said:
A 1.2g feather is dropped from a height of 1.5m and immediately reaches terminal velocity. If the time to fall is 0.95 s and force of the air resistance on the feather is constant, how much work was done on the feather by friction? Answer: W = -0.0016 J

I use the equation W = U + K which turns into W = Uf - Ui + Kf - Ki.

You use this equation right away. No need for further manipulation. That will only make you swap minus signs.
 
petern said:
Also, why did I have to move the W to the other side?

You didn't "have to", nor should you have, but you did anyways... and got the wrong answer... and then you undid what you did to get the right answer.
 
kamerling said:
You use this equation right away. No need for further manipulation. That will only make you swap minus signs.

Oh that works but can you explain why I had to go through that entire process for this problem:

A 35 kg school child climbs a 4.5 meter high spiral slide. If the child reaches a speed of 3.3 m/s at the bottom of the slide, how much work was done by friction?

I tried your method on this problem and it didn't work because the equation is suppose to be W = mgh -1/2mv^2.
 
petern said:
Oh that works but can you explain why I had to go through that entire process for this problem:

A 35 kg school child climbs a 4.5 meter high spiral slide. If the child reaches a speed of 3.3 m/s at the bottom of the slide, how much work was done by friction?

I tried your method on this problem and it didn't work because the equation is suppose to be W = mgh -1/2mv^2.

wrong.
 
  • #10
olgranpappy said:
wrong.

Wow! I can't believe I teacher did the example problem incorrectly.
 
  • #11
Those who can't do, teach. And those who can't teach, teach gym. :wink:
 
  • #12
I'm working on the same problem but I'm having trouble, I can't quite get the right equation...I've been using the work equation and KE but I'm not sure that is right. And I don't get the equation above...
 

Similar threads

Find speed of block using energy and spring equations? Help please
Replies
6
Views
2K
Can You Help Solve This Generalized Work Problem with an Illustrative Image?
Replies
2
Views
1K
Calculation of the amount of work done using potentials
Replies
5
Views
1K
Work Done by Friction & Gravity on Incline: Explained
Replies
7
Views
7K
Finding the normal at the bottom of a curved track
Replies
10
Views
2K
Calculating the speed using Potential graph
Replies
1
Views
2K
How do I accurately calculate work done against friction?
Replies
11
Views
2K
Magnetism and Magnetic Fields- Determining mass of ion
Replies
1
Views
2K
Finding Velocity of a System with Work and Energy
Replies
3
Views
7K
Work done in moving a body up an incline
Replies
13
Views
2K

Hot Threads

Recent Insights

Back
Top