Finding power as a function of time in transferring water

Kanda ryu
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Homework Statement


A completely filled cylindrical tank of height H contains water of mass M. At a height h above the top of the tank there is another wide container. The entire water from the tank is to be transferred into the container in time T such that level of water in tank decreases at a uniform rate. How will the power of the external agent vary with time.

Homework Equations


Change in kinetic energy = sum of work done by external forces

The Attempt at a Solution


As its given uniform rate, change in kinetic energy would be zero so I used work energy theorem.
W(ext force) = change in gravitational potential energy
= mgh'
I thought of taking water of mass dm at a height x below surface of water. So h'=(h+x).I am sort of confused how to proceed here to get power as a function of time. dW/dt would give power but how to proceed on RHS.
 
on Phys.org
Welcome to PF!

You're thinking along the right lines.
Can you express dm in terms of M, T, and dt? (Hint: use the fact that water is leaving the cylindrical tank at a uniform rate.)
 
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Density = M/A H (A is base area of cylinder
So M/AH = dm/A dx
So dm = Mdx/H
As water is decreasing at a uniform rate, Adx/dt = constant
dW/dt =(Mdx/Hdt)h'g
Even if I write Adx/dt = H/T, I don't get the answer as a function of time.
 
Kanda ryu said:
Density = M/A H (A is base area of cylinder
So M/AH = dm/A dx
So dm = Mdx/H
As water is decreasing at a uniform rate, Adx/dt = constant
dW/dt =(Mdx/Hdt)h'g
OK
Even if I write Adx/dt = H/T, I don't get the answer as a function of time.
This equation is not quite correct. Note the overall units on each side don't match. Once you fix that, you will have an expression for dx/dt in terms of H and T. Can you use that to find x as a function of time?
 
Yeah sorry I meant to type Adx/dt = AH/T
dx/dt = H/T
If I integrate dx from 0 to x and dt from 0 to t, I get
x= H t /T
dW/dT = M(dx/dt)g (h+x)
P= M H/T g (h+ Ht/T)
The answer is a function of a general time 't' so maybe this should be correct, thanks a lot for your support sir.
Am I allowed to confirm my final answer from physicsforum helpers as I currently do not have the means to access the correct answer.
Again thanks,
Cheers
 
Correction :
P(t)= MH/TH g(h+Ht/T)
= (M/T)g(h+Ht/T)
 
Kanda ryu said:
Correction :
P(t)= MH/TH g(h+Ht/T)
= (M/T)g(h+Ht/T)
That looks right to me. You can see if the answer makes sense by using P(t) to find the total work done during the time interval from t = 0 to t = T. Do you get what you expect?
 
Yes putting t=0,T/2 and T gives favourable results.
 
Did you use your result for the power P(t) to derive an expression for the total work Wtot done in emptying the cylindrical tank?
 
  • #10
Yes, on integrating P(t)dt taking limits 0 to T, I got
Wtot= Mg(h+HT/2)
 
  • #11
Mg(h+H/2)*
Which is like all the water is concentrated at the center of cylinder (by height) and finding work done to carry that to a height h. I hope this is correct
 
  • #12
Kanda ryu said:
Mg(h+H/2)*
Which is like all the water is concentrated at the center of cylinder (by height) and finding work done to carry that to a height h. I hope this is correct
Yes, that looks very good.
 

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