This is a nice and easy poser.................

If it takes 15 minutes to fill a bath with water, (plug in and 2 taps on full), and it takes 20 minutes for the bath to empty, how long would it take to fill the bath with taps on full (and plug out, of course!)?

answers please, with your explanations!

one hour

If we can assume the draining rate is constant.

yes, drainage rate is constant. This is not a trick question

Originally posted by michael liddle
yes, drainage rate is constant. This is not a trick question

Originally posted by forkedknight
I think his point was that drainage in a real bathtub is not constant. Water pressure out the drain is proportional to how much water is in the tub.

assume the fill and empty rates are constant.

Originally posted by michael liddle
This is a nice and easy poser.................

If it takes 15 minutes to fill a bath with water, (plug in and 2 taps on full), and it takes 20 minutes for the bath to empty, how long would it take to fill the bath with taps on full (and plug out, of course!)?

answers please, with your explanations!

As noted above, the fill behaviour is better modeled using Bernoulli's equation. For this problem, we choose point 1 to be at the surface of the water, and point 2 to be at the drain. Bernoulli's equation for this situation is as follows:

P1/(rho*g) + v1^2/(2g) + h1 = P2/rho*g + v2^2/(2g) + h2

where:

P1, P2 = pressures
rho = density of water
g = acceleration due to gravity
v1, v2 = velocities
h1, h2 = heights

To simply the above equation, we make a few assumptions:

(1) The drain is a free jet (i.e. the water surface at the drainage point is open to the atmosphere), so P1 = P2.
(2) The velocity of the water at the surface of the tub is negligible compared to the drainage velocity, so v1 = 0.
(3) We arbitrarily set h2 = 0.

Using these simplifying assumptions, we are left with:

h1 = v2^2/(2g)

Solving for v2, we have:

v2 = SQRT(2g*h1)

We make one more simplifying assumption here, that the cross-sectional area of the tub B is constant all the way up. In that case, V = B*h1. Subbing in, we have:

v2 = SQRT(2g*B*V)

Now, the product of the drainage velocity and the cross-sectional area of the drain Ac gives us the rate of change in volume due to drainage D. Carrying out this operation, we have:

D = Ac*v2 = Ac*SQRT(2g*B*V)

Lumping all the constants into one constant k, we are left with:

D = k*SQRT(V)

We know it takes 20 minutes to drain a full tub, so using a mass balance we have:

dV/dt = -D = -k*SQRT(V)

dV/(-k*SQRT(V)) = dt

Integrating the above expression, with the limits of integration being V = 1...0 (as the tub is being drained) and t = 0...20, we get:

(2/k)*(SQRT(1)-SQRT(0)) = 20-0

2/k = 20

k = 1/10

Now, we know from iamatiger's post that the fill rate F is 1/15. Therefore, the overall balance for the tub is as follows:

dV/dt = F - D = 1/15 - (1/10)*SQRT(V)

This equation is surprisingly involved to tackle, but luckily the Wolfram Alpha site eats equations like this for breakfast! 😉 Here is a link to a clear version of the final answer:

http://www.wolframalpha.com/input/?i=dV/dt+%3D+1/15+-+(1/10)*SQRT(V)

However, a simple asymptote test will gives us some valuable information. Setting dV/dt = 0, we have:

0 = 1/15 - (1/10)*SQRT(V)

SQRT(V) = 2/3

V = 4/9

Therefore the graph of the water volume over time becomes asymptotic as V approaches 4/9, which means that the water will never fill the tub beyond 4/9 of the total volume.

FINAL ANSWER

The tub will never fill with the taps on and the drain open. Neat!

So, according to your calculation, one of the timeframes given in the OP must change in order for the bathtub to never be filled.

Does the water coming out of the tap slow down, or does the drainage rate increase?

Originally posted by uzless
So, according to your calculation, one of the timeframes given in the OP must change in order for the bathtub to never be filled.

Does the water coming out of the tap slow down, or does the drainage rate increase?

Originally posted by PBE6
As noted above, the fill behaviour is better modeled using Bernoulli's equation. For this problem, we choose point 1 to be at the surface of the water, and point 2 to be at the drain. Bernoulli's equation for this situation is as follows:

P1/(rho*g) + v1^2/(2g) + h1 = P2/rho*g + v2^2/(2g) + h2

where:

P1, P2 = pressures
rho = density of water
g = ac ...[text shortened]...
[b]FINAL ANSWER

The tub will never fill with the taps on and the drain open. Neat![/b]

Originally posted by sonhouse
So you could have a feedback system where the drain goes into the inlet and thus keep the level at 4/9 forever🙂

But if the drain takes 20 minutes, why does the intuitive answer, it drains 3 times in one hour and the fill rate is 4 times per hour, that sounds like what the one answer was 1 hour. Why is that wrong?

Originally posted by sonhouse
So you could have a feedback system where the drain goes into the inlet and thus keep the level at 4/9 forever🙂

But if the drain takes 20 minutes, why does the intuitive answer, it drains 3 times in one hour and the fill rate is 4 times per hour, that sounds like what the one answer was 1 hour. Why is that wrong?

Originally posted by PBE6
I don't think the drainage could ever be fed back into the tub without a pump. Even if the outlet of the drain could be lowered progressively to keep level with the top of the liquid in the tub, losses in the drain would cause the tub liquid to feed back into the drain instead of having the drain feed into the tub. A submerged drain (just below the tub water velocity). Regardless, the most physical answer is that the tub will never drain completely.