Solving Chain Work Problem: Find mgh | Physics Homework Help

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yecko
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Homework Statement


TdPWVgr.png

http://i.imgur.com/TdPWVgr.png

Homework Equations


WD=mgh

The Attempt at a Solution


mass per length=0.8kg/m
mgh= ∫(0,10)(0.8g(10-y))dy=[8gy-0.4y^2g](0,10)=80g-40g=40g
However, the answer is 20g
whats wrong with my calculation?
thanks
 
on Phys.org
BvU said:
What is 10-y in your equation ?
the height the chain need to travel for each horizontal slice
 
BvU said:
limits of your integration
0 to10
BvU said:
I thought you were integrating the force needed to do the work ...
So what is your way to do so?
thanks
 
yecko said:
0 to10
No. Half the chain can be left as is.
So what is your way to do so?
comes down to the same thing.
Note that not everything has to be dragged up all the way to the roof... so you have to revise the 10-y
 
yecko said:
whats wrong with my calculation?
I suggest you are making an assumption about how the bottom of the chain is to be lifted up. You perhaps are imagining standing on the roof, hauling manually, no equipment. I can think of two alternatives that would lead to the lower answer.
 
kuruman said:
Question: What is the change in potential energy of the center of mass?
Half of the chain means the center has zero change?
Does that mean the limit of y is 0 to 5
And the h=2(5-y)?
 
Oh yes! 0.8*5*5g=20g
Right!But what if i need to integrate it? For instance the number of the question is not that perfect?
yecko said:
Does that mean the limit of y is 0 to 5
And the h=2(5-y)?
By mgh, what's wrong with these numbers?
 
Thanks
intergrate mgh=0.8g(10-2y) from 0 to 5 =20g
Finally got it!