Is your code from above intended to solve equation (1) of the paper ?
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Im working with algae growth linked to the light. I don't know how to write the integral on matlab inside the the light intensity formulation.
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function u = bioreactors
clc
clear all
% Forward Euler method is used for solving the following boundary value problem:
% U(0,t) = 0
% U(L,t) = u (end-1,t)
% U(z, 0) = U0(z)=0
% it is assumed that the concentration of C,N,P are costant
% Problem parameters
alpha1 = 5*10^(-4);
mu0 = 0.5;
mue = 0.035;
Hl = 5;
T = 10^3; % [s]
nz = 100; nt = 100;
KP = 0.7 ;
HP= 7;
P = 0.2 ;
PC = 0.1;
K = 0.50;
KN = 0.35 ;
HN = 14.5*10^(-6);
N = 0.3;
NC = 0.2;
KC = 0.5;
HC = 5 ;
C = 0.4 ;
PHs3 = 0.4 ;
PHs4 = 0.5;
Z = 10;
lambda = 2 ;
%Check of the problem's parameters
if any([P-PC N-NC] <=0 )
error('Check problem parameters')
end
if any([alpha1 mu0 Hl Z T nz-2 nt-2 KP P PC HC KN N NC KC HC C HN ] <= 0)
error('Check problem parameters')
end
% Stability
dz=Z/nz ;
dt = T/nt;
r = alpha1*dt/((dz)^2);
st = 1;
while (2*r) > st
nt = nt+1;
end
% Initialization
z = linspace(0,Z,nz+1); t = linspace(0,T,nt+1);
f1= (KP*(P-PC))/(HP+(P-PC));
f2 = (KN*(N-NC))/(HN+(N-NC));
pH = (6.35 - log10(C)) /2 ;
f3 = 1/(1+exp(lambda*(pH-PHs3)));
f4 = 1/(1+exp(lambda*(pH-PHs4)));
I0 = 100*max(sin ((t-0.4*3600)/(6.28)) , sin (0));
%I = ???% Dont know how to write it on matlab.
% Finite-difference method
for j=2:nt+1
u(1) = 0; % Condizione al contorno di Dirichlet
g = (mu0.*I(j))/(Hl+I(j)); decay = g(j)*f1*f2*f3-mue*f4;
u(2:end-1)=(1-2*r-decay*dt)*u(2:end-1)+r*(u(1:end-2)+u(3:end));
u(end) = u(end); % Condizione al contorno di Neumann
plot(u,z,'r*:');
set(gca,'YDir','reverse');
xlabel('u'); ylabel('z');
title(['t=',num2str(t(j))]);
axis([0 0.05 0 10]);
pause(0.01);
end
The integral is in the page 9 of the attachment "algae". The light intensity(I) formulation can be found at page 2, formulation number (3), it is a value which changes through the space z and the time.
As a result i should see a plot in which the mass of microorganism changes over the space and the time, something like this:
On Z=0 there is the light while in Z=5 there is no light so that's why the mass of microorganisms is equal to 0, they are photosynthetic algae.
2 Commenti
Risposte (2)
Torsten
il 18 Nov 2023
Spostato: Torsten
il 18 Nov 2023
Where is your discretization of d^2w/dz^2 ? Where do you implement the boundary conditions dw/dz = 0 at z = 0 and z = L ?
You have to discretize equation (1) of the article in space and use an ode-integrator (usually ode15s) to integrate the values in the grid points over time.
Look up "method-of-lines" for more details.
I suggest you do this first without the integral term. After you succeeded, add the three ordinary differential equations for N,P and C and use "trapz" to compute the integral term.
1 Commento
Alfonso
il 18 Nov 2023
Modificato: Alfonso
il 18 Nov 2023
i've already done the discretization of the equation (1) which is u(2:end-1)=(1-2*r-decay*dt)*u(2:end-1)+r*(u(1:end-2)+u(3:end)); but inside this formula there is the "decay" term which has "g" which depends by the "I" term which has an integral that I don't know how to insert inside matlab, this is the problem.
For the boundary condition i put:
- For z=0 --> u(1)=0, Dirichlet
- For z=L --> u(end)=u(end-1), Noemann equal to 0
You can find everything inside the for cycle. In fact, I just used a for cycle which is simpler to define the discretized w over the time, i'm a student so i'm not so good in doing this work.
But the problem that i don't know how to solve is that the I changes its values also during the space and my for cycle takes into account only the time and not the space.
Regarding N, P, C i want first to make the code going, then i'll go through their equations, so for now you see just some values of them without any formulas.
Torsten
il 19 Nov 2023
Spostato: Torsten
il 19 Nov 2023
My suggestion:
z = linspace(0,Z,nz+1); t = linspace(0,T,nt+1);
I0 = @(t) 100*max(sin ((t-0.4*3600)/(6.28)) , sin (0));
w(:,1) = ... % w at time t = 0
for j = 1:nt
I_in = I0(t(j))*exp(-k*z.').*exp(-rs)*cumtrapz(z.',w(:,j));
g = mu0*I_in./(H_l+I_in);
integral_term = f1 * f2 * f3 * trapz(z.',g.*w(:,j));
w(2:nz,j+1) = w(2:nz,j) + dt*...
w(1,j+1) = w(2,j+1);
w(nz+1,j+1) = w(nz,j+1);
end
27 Commenti
Alfonso
il 19 Nov 2023
w(2:nz,j+1) = w(2:nz,j) + dt*...
what do you mean for dt*...? It that a function?
Torsten
il 19 Nov 2023
Modificato: Torsten
il 19 Nov 2023
It means that you should insert the terms "rhs" of your differential equation
dw/dt = rhs(w,P,N,C,z)
in the grid points 2:nz.
This equation reads in discretized form
w(2:nz,j+1) = w(2:nz,j) + dt*rhs
You wrote you did this in the line
u(2:end-1)=(1-2*r-decay*dt)*u(2:end-1)+r*(u(1:end-2)+u(3:end));
I prefer not to overwrite the results from the previous time steps - thus my u is of dimension (nz+1,nt+1) while yours is of dimension nz+1.
Alfonso
il 20 Nov 2023
Im trying to follow your instruction. But i have an error. For the following code:
function u = bioreactors
clc
clear all
% Forward Euler method is used for solving the following boundary value problem:
% U(0,t) = 0
% U(L,t) = u (end-1,t)
% U(z, 0) = U0(z)=0
% it is assumed that the concentration of C,N,P are costant
% Problem parameters
alpha1 = 5*10^(-4);
mu0 = 0.5;
mue = 0.035;
Hl = 5;
T = 10^3; % [s]
nz = 100; nt = 100;
KP = 0.7 ;
HP= 7;
P = 0.2 ;
PC = 0.1;
K = 0.50;
KN = 0.35 ;
HN = 14.5*10^(-6);
N = 0.3;
NC = 0.2;
KC = 0.5;
HC = 5 ;
C = 0.4 ;
PHs3 = 0.4 ;
PHs4 = 0.5;
Z = 10;
lambda = 2 ;
rs= 10;
%Check of the problem's parameters
if any([P-PC N-NC] <=0 )
error('Check problem parameters')
end
if any([alpha1 mu0 Hl Z T nz-2 nt-2 KP P PC HC KN N NC KC HC C HN ] <= 0)
error('Check problem parameters')
end
% Stability
dz=Z/nz ;
dt = T/nt;
r = alpha1*dt/((dz)^2);
st = 1;
while (2*r) > st
nt = nt+1;
end
% Initialization
z = linspace(0,Z,nz+1); t = linspace(0,T,nt+1);
f1= (KP*(P-PC))/(HP+(P-PC));
f2 = (KN*(N-NC))/(HN+(N-NC));
pH = (6.35 - log10(C)) /2 ;
f3 = 1/(1+exp(lambda*(pH-PHs3)));
f4 = 1/(1+exp(lambda*(pH-PHs4)));
%I0 = 100*max(sin ((t-0.4*3600)/(6.28)) , sin (0));
I0 = @(t) 100*max(sin ((t-0.4*3600)/(6.28)) , sin (0));
w(:,1) = 0.5
% Finite-difference method
%for j=2:nt+1
% u(1) = 0; % Condizione al contorno di Dirichlet
% g = (mu0.*I(j))/(Hl+I(j)); decay = g(j)*f1*f2*f3-mue*f4;
% u(2:end-1)=(1-2*r-decay*dt)*u(2:end-1)+r*(u(1:end-2)+u(3:end));
% u(end) = u(end); % Condizione al contorno di Neumann
% w at time t = 0
for j = 1:nt
I_in = I0(t(j))*exp(-K*z.').*exp(-rs)*cumtrapz(Z.',w(:,j));
g = mu0*I_in./(Hl+I_in);
integral_term = f1 * f2 * f3 * trapz(z.',g.*w(:,j));
w(1,j+1) = w(2,j+1);
w(nz+1,j+1) = w(nz,j+1);
w(2:nz,j+1) = w(2:nz,j) + dt*...
plot(w,z,'r*:');
set(gca,'YDir','reverse');
xlabel('u'); ylabel('z');
title(['t=',num2str(t(j))]);
axis([0 0.05 0 10]);
pause(0.01);
end
I have the following error:
Dimension argument must be a positive integer scalar within indexing range.
Error in cumtrapz>getDimArg (line 91)
dim = matlab.internal.math.getdimarg(dim);
Error in cumtrapz (line 49)
dim = min(ndims(y)+1, getDimArg(dim));
Error in bioreactors (line 72)
I_in = I0(t(j))*exp(-K*z.').*exp(-rs)*cumtrapz(Z.',w(:,j));
Torsten
il 20 Nov 2023
w = zeros(nz+1,nt+1);
w(:,1) = 0.5
for j = 1:nt
I_in = I0(t(j)).*exp(-K*z.').*exp(-rs).*cumtrapz(z.',w(:,j));
...
Alfonso
il 20 Nov 2023
function u = bioreactors
clc
clear all
% Forward Euler method is used for solving the following boundary value problem:
% U(0,t) = 0
% U(L,t) = u (end-1,t)
% U(z, 0) = U0(z)=0
% it is assumed that the concentration of C,N,P are costant
% Problem parameters
alpha1 = 5*10^(-4);
mu0 = 0.5;
mue = 0.035;
Hl = 5;
T = 10^3; % [s]
nz = 100; nt = 100;
KP = 0.7 ;
HP= 7;
P = 0.2 ;
PC = 0.1;
K = 0.50;
KN = 0.35 ;
HN = 14.5*10^(-6);
N = 0.3;
NC = 0.2;
KC = 0.5;
HC = 5 ;
C = 0.4 ;
PHs3 = 0.4 ;
PHs4 = 0.5;
Z = 10;
lambda = 2 ;
rs= 10;
%Check of the problem's parameters
if any([P-PC N-NC] <=0 )
error('Check problem parameters')
end
if any([alpha1 mu0 Hl Z T nz-2 nt-2 KP P PC HC KN N NC KC HC C HN ] <= 0)
error('Check problem parameters')
end
% Stability
dz=Z/nz ;
dt = T/nt;
r = alpha1*dt/((dz)^2);
st = 1;
while (2*r) > st
nt = nt+1;
end
% Initialization
z = linspace(0,Z,nz+1); t = linspace(0,T,nt+1);
f1= (KP*(P-PC))/(HP+(P-PC));
f2 = (KN*(N-NC))/(HN+(N-NC));
pH = (6.35 - log10(C)) /2 ;
f3 = 1/(1+exp(lambda*(pH-PHs3)));
f4 = 1/(1+exp(lambda*(pH-PHs4)));
%I0 = 100*max(sin ((t-0.4*3600)/(6.28)) , sin (0));
I0 = @(t) 100*max(sin ((t-0.4*3600)/(6.28)) , sin (0));
w = zeros(nz+1,nt+1);
w(:,1) = 0.5
% Finite-difference method
%for j=2:nt+1
% u(1) = 0; % Condizione al contorno di Dirichlet
% g = (mu0.*I(j))/(Hl+I(j)); decay = g(j)*f1*f2*f3-mue*f4;
% u(2:end-1)=(1-2*r-decay*dt)*u(2:end-1)+r*(u(1:end-2)+u(3:end));
% u(end) = u(end); % Condizione al contorno di Neumann
for j = 1:nt
I_in = I0(t(j)).*exp(-K*z.').*exp(-rs).*cumtrapz(z.',w(:,j));
%I_in = I0(t(j))*exp(-K*z.').*exp(-rs)*cumtrapz(z.',w(:,j));
g = mu0*I_in./(Hl+I_in);
integral_term = f1 * f2 * f3 * trapz(z.',g.*w(:,j));
w(1,j+1) = w(2,j+1);
w(nz+1,j+1) = w(nz,j+1);
%w(2:nz,j+1) = w(2:nz,j) + dt*...
w(2:nz,j+1)= (1-2*r-integral_term*dt)*w(2:nz,j+1)+r*(w(1:nz-1,j+1)+w(3:nz+1,j+1));
%w(2:nz,j+1) = integral_term(j) +
plot(w,z,'r*:');
set(gca,'YDir','reverse');
xlabel('w'); ylabel('z');
title(['t=',num2str(t(j))]);
axis([0 10 0 10]);
pause(0.01);
end
I tried to put the w(2:nz;j+1) in discretized mode but the graph doesnt work :C
Torsten
il 20 Nov 2023
w(2:nz,j+1)= (1-2*r-integral_term*dt)*w(2:nz,j+1)+r*(w(1:nz-1,j+1)+w(3:nz+1,j+1));
You want to compute from t(j) to t(j+1). Thus the right-hand side can only have terms that are already computed. But you try to access w from time step j+1 that is not yet known.
And the plot command must be
plot(z,w(:,j+1))
instead of
plot(w,z,'r*:');
Alfonso
il 20 Nov 2023
Ok, i modified and the for cycle is now:
for j = 1:nt
I_in = I0(t(j)).*exp(-K*z.').*exp(-rs).*cumtrapz(z.',w(:,j));
%I_in = I0(t(j))*exp(-K*z.').*exp(-rs)*cumtrapz(z.',w(:,j));
g = mu0*I_in./(Hl+I_in);
integral_term = f1 * f2 * f3 * trapz(z.',g.*w(:,j));
w(1,j+1) = w(2,j+1);
w(2:nz,j+1)= (1-2*r-integral_term*dt)*w(2:nz-1,j)+r*(w(1:nz-2,j)+w(3:nz,j));
w(nz+1,j+1) = w(nz,j+1);
Now it appears the problem:
Unable to perform assignment because the size of the left side is 99-by-1 and the size of the right
side is 98-by-1.
Error in bioreactors (line 78)
w(2:nz,j+1)= (1-2*r-integral_term*dt)*w(2:nz-1,j)+r*(w(1:nz-2,j)+w(3:nz,j));
But i cannot find the problem
Torsten
il 20 Nov 2023
Modificato: Torsten
il 20 Nov 2023
There are nz-1 elements from 2:nz. There are nz-2 elements from 3:nz and 2:nz-1 and nz-3 elements from 1:nz-2. Thus the assignment
w(2:nz,j+1)= (1-2*r-integral_term*dt)*w(2:nz-1,j)+r*(w(1:nz-2,j)+w(3:nz,j));
is not possible.
My formula for I_in was not correct:
Replace
I_in = I0(t(j)).*exp(-K*z.').*exp(-rs).*cumtrapz(z.',w(:,j));
by
I_in = I0(t(j)).*exp(-K*z.').*exp(-rs*cumtrapz(z.',w(:,j));
And why do you continue to make wrong changes to my code suggestion ? The order of the assignments
w(2:nz,j+1) = w(2:nz,j) + dt*...
w(1,j+1) = w(2,j+1);
w(nz+1,j+1) = w(nz,j+1);
matters.
w(1,j+1) = w(2,j+1);
w(2:nz,j+1)= (1-2*r-integral_term*dt)*w(2:nz-1,j)+r*(w(1:nz-2,j)+w(3:nz,j));
w(nz+1,j+1) = w(nz,j+1);
makes no sense.
And by "rhs" I mean everything right from the = in
dt(w) = ...
(including the D_M*dzz(w) term).
Alfonso
il 20 Nov 2023
function u = bioreactors
clc
clear all
% Forward Euler method is used for solving the following boundary value problem:
% U(0,t) = 0
% U(L,t) = u (end-1,t)
% U(z, 0) = U0(z)=0
% it is assumed that the concentration of C,N,P are costant
% Problem parameters
alpha1 = 5*10^(-4);
mu0 = 5;
mue = 3.5;
Hl = 5;
T = 10^4; % [s]
nz = 100; nt = 100;
KP = 2 ;
HP= 7;
P = 3 ;
PC = 1;
K = 2;
KN = 3 ;
HN = 14.5*10^(-6);
N = 3;
NC = 2;
KC = 5;
HC = 5 ;
C = 4 ;
PHs3 = 4 ;
PHs4 = 5;
Z = 10;
lambda = 2 ;
rs= 10;
%Check of the problem's parameters
if any([P-PC N-NC] <=0 )
error('Check problem parameters')
end
if any([alpha1 mu0 Hl Z T nz-2 nt-2 KP P PC HC KN N NC KC HC C HN ] <= 0)
error('Check problem parameters')
end
% Stability
dz=Z/nz ;
dt = T/nt;
r = alpha1*dt/((dz)^2);
st = 1;
while (2*r) > st
nt = nt+1;
end
% Initialization
z = linspace(0,Z,nz+1); t = linspace(0,T,nt+1);
f1= (KP*(P-PC))/(HP+(P-PC));
f2 = (KN*(N-NC))/(HN+(N-NC));
pH = (6.35 - log10(C)) /2 ;
f3 = 1/(1+exp(lambda*(pH-PHs3)));
f4 = 1/(1+exp(lambda*(pH-PHs4)));
%I0 = 100*max(sin ((t-0.4*3600)/(6.28)) , sin (0));
I0 = @(t) 100*max(sin ((t-0.4*3600)/(6.28)) , sin (0));
w = zeros(nz+1,nt+1);
w(:,1) = 0 %Final concentration of the algae [0]
% Finite-difference method
%for j=2:nt+1
% u(1) = 0; % Condizione al contorno di Dirichlet
% g = (mu0.*I(j))/(Hl+I(j)); decay = g(j)*f1*f2*f3-mue*f4;
% u(2:end-1)=(1-2*r-decay*dt)*u(2:end-1)+r*(u(1:end-2)+u(3:end));
% u(end) = u(end); % Condizione al contorno di Neumann
for j = 1:nt
I_in = I0(t(j)).*exp(-K*z.').*exp(-rs).*cumtrapz(z.',w(:,j));
%I_in = I0(t(j))*exp(-K*z.').*exp(-rs)*cumtrapz(z.',w(:,j));
g = mu0*I_in./(Hl+I_in);
integral_term = f1 * f2 * f3 * trapz(z.',g.*w(:,j));
w(1,j+1) = w(2,j+1);
%w(2:nz,j+1)= (1-2*r-integral_term*dt)*w(2:nz-1,j)+r*(w(2:nz-3,j)+w(2:nz-2,j));
w(2:nz,j+1)= (1-2*r-integral_term*dt)*w(2:nz,j)+r*(w(1:nz-1,j)+w(3:nz+1,j));
w(nz+1,j+1) = 5 %w(nz,j+1); %Concentration at z=0
%w(2:nz,j+1) = w(2:nz,j) + dt*...
%w(2:nz,j+1) = integral_term(j) +
plot(z,w(:,j+1),'r*:');
%set(gca,'YDir','reverse');
xlabel('w'); ylabel('z');
title(['t=',num2str(t(j))]);
axis([0 10 0 10]);
pause(0.0001);
end
Thanks to you the code is working but there is a problem. I mean, while i put a value of T>1000 the code won't work, I mean, i don't see the plot. Which can be the problem?
Torsten
il 20 Nov 2023
bioreactors()
function u = bioreactors
clc
clear all
% Forward Euler method is used for solving the following boundary value problem:
% U(0,t) = 0
% U(L,t) = u (end-1,t)
% U(z, 0) = U0(z)=0
% it is assumed that the concentration of C,N,P are costant
% Problem parameters
alpha1 = 5*10^(-4);
mu0 = 5;
mue = 3.5;
Hl = 5;
T = 5000; % [s]
nz = 100; nt = 1000;
KP = 2 ;
HP= 7;
P = 3 ;
PC = 1;
K = 2;
KN = 3 ;
HN = 14.5*10^(-6);
N = 3;
NC = 2;
KC = 5;
HC = 5 ;
C = 4 ;
PHs3 = 4 ;
PHs4 = 5;
Z = 10;
lambda = 2 ;
rs= 10;
%Check of the problem's parameters
if any([P-PC N-NC] <=0 )
error('Check problem parameters')
end
if any([alpha1 mu0 Hl Z T nz-2 nt-2 KP P PC HC KN N NC KC HC C HN ] <= 0)
error('Check problem parameters')
end
% Stability
dz=Z/nz ;
dt = T/nt;
r = alpha1*dt/((dz)^2);
st = 1;
%while (2*r) > st
%nt = nt+1;
%end
% Initialization
z = linspace(0,Z,nz+1); t = linspace(0,T,nt+1);
f1= (KP*(P-PC))/(HP+(P-PC));
f2 = (KN*(N-NC))/(HN+(N-NC));
pH = (6.35 - log10(C)) /2 ;
f3 = 1/(1+exp(lambda*(pH-PHs3)));
f4 = 1/(1+exp(lambda*(pH-PHs4)));
%I0 = 100*max(sin ((t-0.4*3600)/(6.28)) , sin (0));
I0 = @(t) 100*max(sin ((t-0.4*3600)/(6.28)) , sin (0));
w = zeros(nz+1,nt+1);
w(:,1) = 0; %Final concentration of the algae [0]
% Finite-difference method
%for j=2:nt+1
% u(1) = 0; % Condizione al contorno di Dirichlet
% g = (mu0.*I(j))/(Hl+I(j)); decay = g(j)*f1*f2*f3-mue*f4;
% u(2:end-1)=(1-2*r-decay*dt)*u(2:end-1)+r*(u(1:end-2)+u(3:end));
% u(end) = u(end); % Condizione al contorno di Neumann
for j = 1:nt
I_in = I0(t(j)).*exp(-K*z.').*exp(-rs*cumtrapz(z.',w(:,j)));
%I_in = I0(t(j))*exp(-K*z.').*exp(-rs)*cumtrapz(z.',w(:,j));
g = mu0*I_in./(Hl+I_in);
integral_term = f1 * f2 * f3 * trapz(z.',g.*w(:,j));
%w(1,j+1) = w(2,j+1);
%w(2:nz,j+1)= (1-2*r-integral_term*dt)*w(2:nz-1,j)+r*(w(2:nz-3,j)+w(2:nz-2,j));
w(2:nz,j+1)= (1-2*r-integral_term*dt)*w(2:nz,j)+r*(w(1:nz-1,j)+w(3:nz+1,j));
w(1,j+1) = w(2,j+1);
w(nz+1,j+1) = 5; %w(nz,j+1); %Concentration at z=0
%w(2:nz,j+1) = w(2:nz,j) + dt*...
%w(2:nz,j+1) = integral_term(j) +
%plot(z,w(:,j+1),'r*:');
%set(gca,'YDir','reverse');
%xlabel('w'); ylabel('z');
%title(['t=',num2str(t(j))]);
%axis([0 10 0 10]);
%pause(0.0001);
end
plot(z,w(:,end))
end
Alfonso
il 20 Nov 2023
Modificato: Alfonso
il 20 Nov 2023
Ok, really thank you and sorry but im trying to do it for myself because my professor is not very good. You are awesome and the best for me! I've learned a lot talking with you then doing a 3 months course with my "prof"...
Regarding the plot, I would like that the plot starts from 0 on the axes and not from 10. I mean on a column 0 is supposed to be the top layer while z=10 is the bottom layer, so it's the one with no light and so without algae. But how can i change the code to do this?
Regarding the code that you sent to me, if you plot like this:
plot(z,w(:,j+1),'r*:');
xlabel('z'); ylabel('W');
title(['t=',num2str(t(j))]);
axis([0 10 0 10]);
pause(0.01);
You will see that the code won't work anymore. I mean, if i put like more then 5000 the curve stucks and won't change anymore during the time. Do you know why? Maybe, i have to check for the initial parameter?
Alfonso
il 21 Nov 2023
With this command it just reverse the axis but then the plot and the code starts always from 10. I want the code starting from 0, not from 10.
Torsten
il 21 Nov 2023
Could you sketch by hand what you want and include it here as a graphics ? I don't understand your description.
Alfonso
il 21 Nov 2023
Modificato: Alfonso
il 21 Nov 2023
My code is the following:
function w = Bioreattore_POTENTE_(Mat)
clc
clear all
% Forward Euler method is used for solving the following boundary value problem:
% U(0,t) = 0
% U(L,t) = u (end-1,t)
% U(z, 0) = U0(z)=0
% it is assumed that the concentration of C,N,P are costant
% Problem parameters
alpha1 = 5*10^(-4);
mu0 = 5;
mue = 3.5;
Hl = 5;
T = 1000; % [s]
nz = 100; nt = 100;
KP = 2 ;
HP= 7;
P = 3 ;
PC = 1;
K = 2;
KN = 3 ;
HN = 14.5*10^(-6);
N = 3;
NC = 2;
KC = 5;
HC = 5 ;
C = 4 ;
PHs3 = 4 ;
PHs4 = 5;
Z = 10;
lambda = 2 ;
rs= 10;
%Check of the problem's parameters
if any([P-PC N-NC] <=0 )
error('Check problem parameters')
end
if any([alpha1 mu0 Hl Z T nz-2 nt-2 KP P PC HC KN N NC KC HC C HN ] <= 0)
error('Check problem parameters')
end
% Stability
dz=Z/nz ;
dt = T/nt;
r = alpha1*dt/((dz)^2);
st = 1;
while (2*r) > st
nt = nt+1;
end
% Initialization
z = linspace(0,Z,nz+1); t = linspace(0,T,nt+1);
f1= (KP*(P-PC))/(HP+(P-PC));
f2 = (KN*(N-NC))/(HN+(N-NC));
pH = (6.35 - log10(C)) /2 ;
f3 = 1/(1+exp(lambda*(pH-PHs3)));
f4 = 1/(1+exp(lambda*(pH-PHs4)));
%I0 = 100*max(sin ((t-0.4*3600)/(6.28)) , sin (0));
I0 = @(t) 100*max(sin ((t-0.4*3600)/(6.28)) , sin (0));
w = zeros(nz+1,nt+1);
w(:,1) = 0; %Final concentration of the algae [0]
% Finite-difference method
%for j=2:nt+1
% u(1) = 0; % Condizione al contorno di Dirichlet
% g = (mu0.*I(j))/(Hl+I(j)); decay = g(j)*f1*f2*f3-mue*f4;
% u(2:end-1)=(1-2*r-decay*dt)*u(2:end-1)+r*(u(1:end-2)+u(3:end));
% u(end) = u(end); % Condizione al contorno di Neumann
for j = 1:nt
I_in = I0(t(j)).*exp(-K*z.').*exp((-rs).*cumtrapz(z.',w(:,j)));
%I_in = I0(t(j))*exp(-K*z.').*exp(-rs)*cumtrapz(z.',w(:,j));
g = mu0*I_in./(Hl+I_in);
integral_term = f1 * f2 * f3 * trapz(z.',g.*w(:,j));
%w(1,j+1) = w(2,j+1);
%w(2:nz,j+1)= (1-2*r-integral_term*dt)*w(2:nz-1,j)+r*(w(2:nz-3,j)+w(2:nz-2,j));
w(2:nz,j+1)= (1-2*r-integral_term*dt)*w(2:nz,j)+r*(w(1:nz-1,j)+w(3:nz+1,j));
w(1,j+1) = w(2,j+1);
w(nz+1,j+1) = 5;%w(nz,j+1); %Concentration at z=0
%w(2:nz,j+1) = w(2:nz,j) + dt*...
%w(2:nz,j+1) = integral_term(j) +
plot(z,w(:,j+1),'r*:');
%set(gca,'XDir','reverse');
xlabel('z'); ylabel('w');
title(['t=',num2str(t(j))]);
axis([0 10 0 10]);
pause(0.0001);
end
%plot(z,w(:,end))
%end
Now, first of all my code works good until the time T=1000, after this value the code stops working and i don't know why. Second, the script starts at z=10 with a concentration value that i've chosen thanks to the following row in the for cycle:
w(1,j+1) = w(2,j+1); %Concentration at Z=0
w(nz+1,j+1) = 5; %Concentration at Z=10
But i want that the script starts at z=0 with a concentration value that i've chosen. The problem is that when i write the following row in the flow cycle:
w(1,j+1) = 5; %w(2,j+1); Concentration at Z=0
w(nz+1,j+1) = w(nz,j+1); %5; Concentration at Z=10
The script work but the plot not. I have the following, respectively, plots:
z=10; w=5
z=0; w=5Do you have some suggestions to solve my ploblems? Thank you very much
As attachment you can find the file that im following.
Torsten
il 22 Nov 2023
Modificato: Torsten
il 22 Nov 2023
Your code works - also for T = 10000.
I already told you that the lines
%st = 1;
%while (2*r) > st
% nt = nt+1;
%end
don't make sense - so I left them, but as comments. They produce an endless loop if 2*r > st which is the case if T becomes large.
Further you use the Explicit Euler method for the discretization of d^2w/dz^2. The Explicit Euler method has strong stability problems of the time step size dt is too big. So if you get unphysical results, it's a good idea to choose a bigger value for nt.
Concerning your second question I don't know exactly what you want to do. Do you only want to reflect the graph at z = 5 or do you want to solve the equations with the boundary conditions reversed ? The latter will produce different results, I guess. If you only want to reflect results, you can use "flipud" on the results as done below.
w = Bioreattore_POTENTE_();
function w = Bioreattore_POTENTE_
clc
clear all
% Forward Euler method is used for solving the following boundary value problem:
% U(0,t) = 0
% U(L,t) = u (end-1,t)
% U(z, 0) = U0(z)=0
% it is assumed that the concentration of C,N,P are costant
% Problem parameters
alpha1 = 5*10^(-4);
mu0 = 5;
mue = 3.5;
Hl = 5;
T = 10000; % [s]
nz = 100; nt = 2000;
KP = 2 ;
HP= 7;
P = 3 ;
PC = 1;
K = 2;
KN = 3 ;
HN = 14.5*10^(-6);
N = 3;
NC = 2;
KC = 5;
HC = 5 ;
C = 4 ;
PHs3 = 4 ;
PHs4 = 5;
Z = 10;
lambda = 2 ;
rs= 10;
%Check of the problem's parameters
if any([P-PC N-NC] <=0 )
error('Check problem parameters')
end
if any([alpha1 mu0 Hl Z T nz-2 nt-2 KP P PC HC KN N NC KC HC C HN ] <= 0)
error('Check problem parameters')
end
% Stability
dz=Z/nz ;
dt = T/nt;
r = alpha1*dt/((dz)^2);
%st = 1;
%while (2*r) > st
% nt = nt+1;
%end
% Initialization
z = linspace(0,Z,nz+1); t = linspace(0,T,nt+1);
f1= (KP*(P-PC))/(HP+(P-PC));
f2 = (KN*(N-NC))/(HN+(N-NC));
pH = (6.35 - log10(C)) /2 ;
f3 = 1/(1+exp(lambda*(pH-PHs3)));
f4 = 1/(1+exp(lambda*(pH-PHs4)));
%I0 = 100*max(sin ((t-0.4*3600)/(6.28)) , sin (0));
I0 = @(t) 100*max(sin ((t-0.4*3600)/(6.28)) , sin (0));
w = zeros(nz+1,nt+1);
w(:,1) = 0; %Final concentration of the algae [0]
% Finite-difference method
%for j=2:nt+1
% u(1) = 0; % Condizione al contorno di Dirichlet
% g = (mu0.*I(j))/(Hl+I(j)); decay = g(j)*f1*f2*f3-mue*f4;
% u(2:end-1)=(1-2*r-decay*dt)*u(2:end-1)+r*(u(1:end-2)+u(3:end));
% u(end) = u(end); % Condizione al contorno di Neumann
for j = 1:nt
I_in = I0(t(j)).*exp(-K*z.').*exp((-rs).*cumtrapz(z.',w(:,j)));
%I_in = I0(t(j))*exp(-K*z.').*exp(-rs)*cumtrapz(z.',w(:,j));
g = mu0*I_in./(Hl+I_in);
integral_term = f1 * f2 * f3 * trapz(z.',g.*w(:,j));
%w(1,j+1) = w(2,j+1);
%w(2:nz,j+1)= (1-2*r-integral_term*dt)*w(2:nz-1,j)+r*(w(2:nz-3,j)+w(2:nz-2,j));
w(2:nz,j+1)= (1-2*r-integral_term*dt)*w(2:nz,j)+r*(w(1:nz-1,j)+w(3:nz+1,j));
w(1,j+1) = w(2,j+1);
w(nz+1,j+1) = 5;%w(nz,j+1); %Concentration at z=0
%w(2:nz,j+1) = w(2:nz,j) + dt*...
%w(2:nz,j+1) = integral_term(j) +
%plot(z,w(:,j+1),'r*:');
%set(gca,'XDir','reverse');
%xlabel('z'); ylabel('w');
%title(['t=',num2str(t(j))]);
%axis([0 10 0 10]);
%pause(0.0001);
end
plot(z,flipud(w(:,end)))
end
Alfonso
il 23 Nov 2023
You delete everytime the plot that i put in the code, like the following:
%plot(z,w(:,j+1),'r*:');
%set(gca,'XDir','reverse');
%xlabel('z'); ylabel('w');
%title(['t=',num2str(t(j))]);
%axis([0 10 0 10]);
%pause(0.0001);
But i just want this type of plot, now the function flipud is good, thanks, but i would like to see how W changes over the time and the Z. If you try to run the code with the above plot you will see that after T=5000 the curve starts to freeze and stuck, the concentration of W doesn't change anymore after z=4 and it seems strange, the algae concentration should increase over the z and over the time but very slowly while we are far away from a light source, but as i told you in my above plot I see that the algae concentration near z=4 it stucks
Torsten
il 23 Nov 2023
You delete everytime the plot that i put in the code, like the following:
...
But i just want this type of plot, now the function flipud is good, thanks, but i would like to see how W changes over the time and the Z.
You can plot whatever you like after computing the solution up to time T. I would recommend separating calculations and postprocessing. But if you want to plot 100 or more curves within the for-loop: do it.
If you try to run the code with the above plot you will see that after T=5000 the curve starts to freeze and stuck, the concentration of W doesn't change anymore after z=4 and it seems strange, the algae concentration should increase over the z and over the time but very slowly while we are far away from a light source, but as i told you in my above plot I see that the algae concentration near z=4 it stucks
It indicates that your equation for w has reached a steady-state. If you think that no steady-state should exist, there must be something wrong with your equation. E.g. you did not yet consider P, N and C.
Alfonso
il 24 Gen 2024
Modificato: Alfonso
il 24 Gen 2024
Ok, at least the code worked but now i noticed that regarding this code:
function w = Bioreactor
clc
clear all
% Forward Euler method is used for solving the following boundary value problem:
% Problem parameters
Dm = 5*10^(-4); % Diffusion coefficient [m^2/s]
mu0 = 5; % Bound for the growth rate
mue = 2;
Hl = 5;
T = 5000; % [s]
nz = 100; nt = 1000;
KP = 2;
HP= 7;
PC = 1;
K = 2; %*
KN = 3;
HN = 14.5*10^(-6);
NC = 2;
KC = 5;
HC = 5 ;
PHs3 = 4 ;
PHs4 = 5;
lambda = 0.2 ; %sharpness of the profile of f3
rs= 10; %*
P(1)=3; % Initial chosen concentration of P [g/L]
N(1)=9; % Initial chosen concentration of N [g/L]
C(1)=30; % Initial chosen concentration of C [g/L]
Z = 10; % Lenght of the bioreactor [m]
%Check of the problem's parameters
if any([P(1)-PC N(1)-NC] <=0 )
error('Check problem parameters')
end
if any([Dm mu0 Hl Z T nz-2 nt-2 KP P(1) PC HC KN N(1) NC KC HC C(1) HN ] <= 0)
error('Check problem parameters')
end
% Stability
dz = Z/nz;
st = 1/2;
dt = st*dz^2/Dm;
nt = T/dt;
% Initialization
z = linspace(0,Z,nz+1); t = linspace(0,T,nt+1);
nt = round(nt); % Round nt to an integer
nz = round(nz); % Round nz to an integer
N = zeros(1, nt+1); % Initialize N to zero
P = zeros(1, nt+1); % Initialize P to zero
C = zeros(1, nt+1); % Initialize C to zero
I0 = @(t) 100*max(sin ((t-0.4*3600)/(6.28)) , sin (0));
w = zeros(nz+1,nt+1);
% Finite-difference method
for j = 1:nt
f1= (KP*(P(j)-PC))/(HP+(P(j)-PC));
f2 = (KN*(N(j)-NC))/(HN+(N(j)-NC));
pH = (6.35 - log10(C(j))) /2 ;
f3 = 1/(1+exp(lambda*(pH-PHs3)));
f4 = 1/(1+exp(lambda*(pH-PHs4)));
I_in = I0(t(j)).*exp(-K*z.').*exp((-rs).*cumtrapz(z.',w(:,j)));
g = mu0*I_in./(Hl+I_in);
integral_term = f1 * f2 * f3 * trapz(z.',g.*w(:,j)); % Data organization
N(j+1) = N(j) + dt*( -1/Z*integral_term*N(j)) % Function of N over the time and space
P(j+1) = P(j) + dt*( -1/Z*integral_term*P(j)) % Function of P over the time and space
C(j+1) = C(j) + dt*( -1/Z*integral_term*C(j)) % Function of C over the time and space
w(nz+1,j+1) = 5; % Algae concentration at z=0 [Dirichlet]
w(2:nz,j+1) = w(2:nz,j) + dt*(f1*f2*f3*w(2:nz,j).*g(2:nz) + Dm * (w(3:nz+1,j)-2*w(2:nz,j)+w(1:nz-1,j))/dz^2)
w(1,j+1) = w(2,j+1); % Algae concentration at z=10 [Neumann]
plot(z,flipud(w(:,j+1)),'b');
%set(gca,'XDir','reverse');
xlabel('z'); ylabel('w');
title(['t=',num2str(t(j)),' s']);
axis([0 10 0 10]);
pause(0.1);
end
end
Which is the working one, but on the line:
w(2:nz,j+1) = w(2:nz,j) + dt*(f1*f2*f3*w(2:nz,j).*g(2:nz) + Dm * (w(3:nz+1,j)-2*w(2:nz,j)+w(1:nz-1,j))/dz^2)
Was missing the parameter mue*f4 at the beginning of the code. So i added them like this:
w(2:nz,j+1) = mue*(f4*w(2:nz,j)) + dt*(f1*f2*f3*w(2:nz,j).*g(2:nz) + Dm * (w(3:nz+1,j)-2*w(2:nz,j)+w(1:nz-1,j))/dz^2)
But now if i click on run the code is instable, i tried to change nz and nt but without any solution, can you help me again @Torsten, you are the only one that can save me!
Torsten
il 24 Gen 2024
w(2:nz,j+1) = w(2:nz,j) + dt*( f1*f2*f3*w(2:nz,j).*g(2:nz) + Dm * (w(3:nz+1,j)-2*w(2:nz,j)+w(1:nz-1,j))/dz^2 - mue*f4*w(2:nz,j))
Alfonso
il 25 Gen 2024
Thanks so much!. The only thing now is that the parameter mue*f4 is the death rate of the algae, so if i amplify mue there should be less algae and the curve should change a bit. But, trying to modify this death rate doesn't change the curve.
Can you check? Reducing and modifing the mue value?
Have you got some advises?
Torsten
il 25 Gen 2024
Have you got some advises?
No. The sink term is correctly implemented into the equation for w.
Alfonso
il 25 Gen 2024
Can you try to change the mue parameter? On the plot i see always the same curve :C
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