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Chapter 13 MIMs - Mobile Immobile Models. Consider the Following Case You have two connected domains that can exchange mass 1 1 2 2.

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Presentation on theme: "Chapter 13 MIMs - Mobile Immobile Models. Consider the Following Case You have two connected domains that can exchange mass 1 1 2 2."— Presentation transcript:

1 Chapter 13 MIMs - Mobile Immobile Models

2 Consider the Following Case You have two connected domains that can exchange mass 1 1 2 2

3 We can write something like this If we assume that each reservoir is well mixed and looses mass to the other at a rate , then we can write the following equations Note that this like assuming a diffusive transfer between the two across some finite transition region Most importantly  is the ratio of volumes

4 What can we say about this system What happens at steady state (equilibrium)? How about if want to include an initial condition, say What can we do?

5 Hmmmmm? This poses a challenge, because we may not be able to use standard methods However, can we change a differential equation into an algebraic one? In previous cases we have used the Fourier Transform, but now we are dealing with time for which it is not reasonable to say - infinity<t<infinity…. But rather 0 to infinity.. Good news – there’s a thing called the Laplace Transform

6 Laplace Transform The Laplace transform of a function f(t) is defined by It converts t->s, like FT does x->k It is similar to the Fourier transform and has all sort of useful and similar to FT properties, including a particularly useful one f 0 is initial condition of f(t)

7 LT of Common Functions See Wikipedia for more and you can always try to rely on Mathematica for help too

8 Like for FT there is an inverse It’s pretty horrible to try and calculate Use tables, Mathematica and in some cases numerical inversion methods in Matlab (only option in some cases)

9 Back to our System Laplace Transform Algebraic equations we can solve

10 Solving the equations in Laplace Space We now have an explicit solution for both concentrations that we can inverse transform to get the solutions in time Pain to do – BUT – Mathematica comes to the rescue

11 In real space Check the asymptotic t-> infinity… What do these look like?

12 A couple of examples..

13 So why am I teaching you this… Consider the following – a flow channel and an immobile region next to it that can exchange mass What equations should we use here??

14 How about these? If we add these two equation together we get something resembling a conservative equation

15 Total Concentration First, let’s consider an interesting case  -> infinity (i.e. mass is exchanged really really quickly between the two domains) What does this condition mean in terms of C 1 and C 2 ? It means that they equilibrate instantaneously C1=C2

16 Does this resemble something we have seen before?? Under the assumption of instant equilibrium Look familiar???What if I called R=1+  Retardation Coefficient – The MIM is a more general model than ADE with retardation

17 Ok, let’s go back to these Let’s not worry about diffusion in the mobile channel just yet – i.e. D=0 And let’s try and solve this for C 2 (t=0)=0 andC 1 (t=0)=  (x) What can we do??

18 Yup; Laplace Transform Ok – no longer algebraic, but we can combine into a single ODE that can be solved

19 Recognizing We can write an equation for concentration 1 only Which we can solve with Mathematica

20 Solution See the Mathematica code to see how we got this. Now, first let’s check the consistency of this result. Is it correct when  =0

21 Solution Good it’s consistent so now let’s look at the full solution Too hard to do by hand, even with Mathematica – numerical solution only (Matlab) Inverse Laplace

22 Matlab Code

23 A couple of Results – Breakthrough Curves at x=10

24 What about just diffusion Now our equations are Again, we can combine these into a single ODE that can be solved

25 Again, we use Mathematica and Matlab to solve the problem In fact just going into Laplace space is not quite enough as we the derivate in space causes some problems so we Fourier Transform also Now we go to Mathematica to solve and invert these. We can only invert back to Laplace space and then invert numerically to real space with Matlab as before

26 Solution Method In Fourier-Laplace Space we have In Laplace space from Mathematica we have Let’s do some gut checks to make sure these make sense and then go to Matlab

27 Sample Results

28 In many instances reactions only happen in one region Can you think of any? In this case let’s focus on first order degradation in the immobile region and not worry about diffusion in the mobile region. Reaction term Degradation at rate  THIS IS VERY SIMILAR TO THE PROBLEM WE STUDIED BEFORE BUT ONE ADDITIONAL TERM – SAME METHODS APPLY

29 Solution Method In Laplace space Solve, as before with Mathematica Check – if g=0, we recover case with no reaction And then invert numerically with Matlab

30 Some example results

31 However In real field settings for a reactive tracer it can be difficult to actually measure the details of such a breakthrough curve and a common thing to d is run the system to plateau (Steady State with a constant concentration input at an upstream position) At x=0

32 A common thing you might do Measure  from a conservative tracer release Then measure  from a reactive steady state experiment From equation for C2 At x=0

33 Solve How does this compare to just advection with reaction This means that the reaction rate you would measure by not accounting for exchange Is not a real reaction rate, but an effective one

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