Please help with some Calculus to the Phy World questions :) (1 Viewer)

s8891 · Jun 20, 2012

Hi

I'm having problems with some of these problems. It would be great if you could post up worked solutions for them

1. A rectangular vessel is divided into two equal compartments by a vertical porous membrane. Liquid in one compartment, initially at a depth of 20cm, passes into the other compartment, initially empty, at a rate proportional to the difference in levels.
a) If the depth of liquid in one of the vessels at any time t minutes is x cm, show that dx/dt=k(20-2x)
b) Show that x=10[1-e^(-2kt)]
c) If the level in the second compartment rises 2cm in the first 5 minutes, after what time will the difference in levels be 2cm?

2. A body falls from rest in a medium and its velocity, v metres/second, after t seconds is given by: v=80[1-e^(-0.4t)
a) Show that the acceleration is proportional to 80-v
b) Calculate the distance fallen in the first 5 seconds.
c) Calculate the distance fallen when v=60.

Thanks in advance. Will be repping

zeebobDD · Jun 20, 2012

2. Acc. is d(v)/dt

a= 80(-e^-0.4t * (-0.4)) = 0.4 * 80e^-0.4t but V=80-80e^-0.4t

therefore a = 0.4 * (80-V)

b) x - intgeral v dt where v=80(1-e^-0.4t)

dx = 80(1-e^-0.4t) dt

integrate 80(1-e^-0.4t) dt from 5 to 0 since its asking for the first 5 seconds
and you end up with 227m

c) V *(dv/dx) = (80-V) * 0.4

therefore V dv / (80-V) = 0.4 dx

integrating LHS from 60 to 0 as q' asks for v=60 seconds

then just integrate and you will arrive with the answer

s8891 · Jun 20, 2012

zeebobDD said:
2. Acc. is d(v)/dt

a= 80(-e^-0.4t * (-0.4)) = 0.4 * 80e^-0.4t but V=80-80e^-0.4t

therefore a = 0.4 * (80-V)

b) x - intgeral v dt where v=80(1-e^-0.4t)

dx = 80(1-e^-0.4t) dt

integrate 80(1-e^-0.4t) dt from 5 to 0 since its asking for the first 5 seconds
and you end up with 227m

c) V *(dv/dx) = (80-V) * 0.4

therefore V dv / (80-V) = 0.4 dx

integrating LHS from 60 to 0 as q' asks for v=60 seconds

then just integrate and you will arrive with the answer

can you show the working for part c? im not getting the right answer :S

zeebobDD · Jun 20, 2012

so 0.4x = int from 60to 0 v dv/ (80-v)

for the integrand you can either use long division or manipulate the function

so 0.4x = (-1 + 80/(80-v)) dv

0.4x = -v-[1/80(Ln(80-v)] dv

sub back in the limits 60 to 0

and you will end up with 80Ln(4)-60 but 0.4x = 80Ln(4)-60 so x = 127.25 approx.

Timske · Jun 20, 2012

s8891 said:
can you show the working for part c? im not getting the right answer :S

Sanjeet · Jun 20, 2012

karnbmx · Jun 22, 2012

Sanjeet said:
$\\ 1. \\ $(a) $\frac{dh}{dt}\propto h_{1} - h_{2} \\ \frac{dh}{dt} = k(h_{1} - h_{2}) \\ $let $h_{1} = 20-x$ (It is initially 20cm, and loses x cm as vessel 2 gains x cm) \\ let $h_{2} = x \\ \therefore \frac{dx}{dt}=k(20-x-x)\\ = k(20-2x)\\ \\ (b)$ $ \frac{dx}{(20-2x)} = k$ $dt \\ \int \frac{dx}{(20-2x)} = \int k$ $dt \\ -\frac{1}{2}ln(20-2x)=kt+C \\ ln(20-2x)=-2kt+C \\ e^{-2kt+C} = 20-2x\\ e^{-2kt}\cdot e^{C} = 20-2x$ (let e^{C} = $A$ as it is an arbitrary constant$) \\ Ae^{-2kt} = 20-2x \\ \\$at t=0, x=0,$ \\ A=20-2(0) \Rightarrow A=20 \\ 20-2x = 20e^{-2kt} \\ x = 10(1-e^{-2kt})\\ \\ (c)$ at t = 5, x = 2$ \\ 2=10(1-e^{-10k}) \Rightarrow \frac{4}{5}=e^{-10k} \\ ln(\frac{4}{5})=-10k \Rightarrow k = -\frac{1}{10}ln(\frac{4}{5}) \\ $Now we want the difference of the heights to be = 2,$ \\ 20-2x = 2 \Rightarrow x=9 \\ 9=10(1-e^{-2kt}) \\ \frac{1}{10}=e^{-2kt} \\ -2kt = -ln10 \\ \therefore t = \frac{1}{2k}\cdot ln10$

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Please help with some Calculus to the Phy World questions :) (1 Viewer)

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