Finite Differences using fsolve for non linear equations
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I need help writing a code that solves the boundary layer problem for fluid mechanics. I am using fsolve to solve non-linear equations (continuity and momentum equations) for the boundary layer, but I am stuck getting no solutions for my code. Any help is greatly appreciated! Here I have attempted to convert my function F (equations) and its variables, u and v, into a single vector (f and x respectively) in an attempt to solve it as I assume that fsolve takes in vector inputs. Total 2*ny*nx equations and hence unknowns to be solved, 1 for each cell.
My code:
clear all, close all, clc
nx = 10;
ny = 10;
x0 = ones(2*ny*nx,1);
k = fsolve(@blayer, x0);
function f = blayer(x)
nx = 10;
ny = 10;
L = 1;
H = 1;
dx = L/(nx-1);
dy = H/(ny-1);
P = 1;
pgrad = P/L;
v = zeros(ny,nx);
u = zeros(ny,nx);
u(:,1) = 1; % Incoming
v(:,1) = 0; % Incoming
u(1,:) = 0; % Bottom
v(1,:) = 0; % Bottom
u(ny,:) = 0; % Top
v(ny,:) = 0; % Top
F = zeros(2*ny, nx);
X = [u;v];
Xt = X';
x = Xt(:);
j = 0;
while j <= ny
j = j+1;
if j == 1
for i = 1:nx
if i == 1
F(j,i) = (u(j,i+1)-u(j,i))/dx + (v(j+1,i)-v(j,i))/dy;
F(j+ny,i) = u(j,i)*(u(j,i+1)-u(j,i))/dx + v(j,i)*(u(j+1,i)-u(j,i))/dy - (u(j+1,i)-2*u(j,i)+u(j,i))/dy^2 + pgrad;
elseif i > 1 && i < nx
F(j,i) = (u(j,i+1)-u(j,i-1))/(2*dx) + (v(j+1,i)-v(j,i))/dy;
F(j+ny,i) = u(j,i)*(u(j,i+1)-u(j,i-1))/(2*dx) + v(j,i)*(u(j+1,i)-u(j,i))/dy - (u(j+1,i)-2*u(j,i)+u(j,i))/dy^2 + pgrad;
elseif i == nx
F(j,i) = (u(j,i)-u(j,i-1))/dx + (v(j+1,i)-v(j,i))/dy;
F(j+ny,i) = u(j,i)*(u(j,i)-u(j,i-1))/dx + v(j,i)*(u(j+1,i)-u(j,i))/dy - (u(j+1,i)-2*u(j,i)+u(j,i))/dy^2 + pgrad;
end
end
end
if j > 1 && j < ny
for i = 1:nx
if i == 1
F(j,i) = (u(j,i+1)-u(j,i))/dx + (v(j+1,i)-v(j-1,i))/(2*dy);
F(j+ny,i) = u(j,i)*(u(j,i+1)-u(j,i))/dx + v(j,i)*(u(j+1,i)-u(j-1,i))/(2*dy) - (u(j+1,i)-2*u(j,i)+u(j-1,i))/dy^2 + pgrad;
elseif i > 1 && i < nx
F(j,i) = (u(j,i+1)-u(j,i-1))/(2*dx) + (v(j+1,i)-v(j-1,i))/(2*dy);
F(j+ny,i) = u(j,i)*(u(j,i+1)-u(j,i-1))/(2*dx) + v(j,i)*(u(j+1,i)-u(j-1,i))/(2*dy) - (u(j+1,i)-2*u(j,i)+u(j-1,i))/dy^2 + pgrad;
elseif i == nx
F(j,i) = (u(j,i)-u(j,i-1))/dx + (v(j+1,i)-v(j-1,i))/(2*dy);
F(j+ny,i) = u(j,i)*(u(j,i)-u(j,i-1))/dx + v(j,i)*(u(j+1,i)-u(j-1,i))/(2*dy) - (u(j+1,i)-2*u(j,i)+u(j-1,i))/dy^2 + pgrad;
end
end
end
if j == ny
for i = 1:nx
if i == 1
F(j,i) = (u(j,i+1)-u(j,i))/dx + (v(j,i)-v(j-1,i))/dy;
F(j+ny,i) = u(j,i)*(u(j,i+1)-u(j,i))/dx + v(j,i)*(u(j,i)-u(j-1,i))/dy - (u(j,i)-2*u(j,i)+u(j-1,i))/dy^2 + pgrad;
elseif i > 1 && i < nx
F(j,i) = (u(j,i+1)-u(j,i-1))/(2*dx) + (v(j,i)-v(j-1,i))/dy;
F(j+ny,i) = u(j,i)*(u(j,i+1)-u(j,i-1))/(2*dx) + v(j,i)*(u(j,i)-u(j-1,i))/dy - (u(j,i)-2*u(j,i)+u(j-1,i))/dy^2 + pgrad;
elseif i == nx
F(j,i) = (u(j,i)-u(j,i-1))/dx + (v(j,i)-v(j-1,i))/dy;
F(j+ny,i) = u(j,i)*(u(j,i)-u(j,i-1))/dx + v(j,i)*(u(j,i)-u(j-1,i))/dy - (u(j,i)-2*u(j,i)+u(j-1,i))/dy^2 + pgrad;
end
end
end
end
Ft = F';
f = Ft(:);
end
1 comentario
Ellson Chow
el 21 de Ag. de 2020
Respuestas (1)
Alan Stevens
el 21 de Ag. de 2020
Do you need fsolve at all? Doesn't your blayer function do the solving itself? Couldn't you simply have
nx = 10;
ny = 10;
L = 1;
H = 1;
dx = L/(nx-1);
dy = H/(ny-1);
P = 1;
pgrad = P/L;
v = zeros(ny,nx);
u = zeros(ny,nx);
u(:,1) = 1; % Incoming
v(:,1) = 0; % Incoming
u(1,:) = 0; % Bottom
v(1,:) = 0; % Bottom
u(ny,:) = 0; % Top
v(ny,:) = 0; % Top
F = zeros(2*ny, nx);
% X = [u;v];
% Xt = X';
% x = Xt(:);
j = 0;
while j <= ny
j = j+1;
if j == 1
for i = 1:nx
if i == 1
F(j,i) = (u(j,i+1)-u(j,i))/dx + (v(j+1,i)-v(j,i))/dy;
F(j+ny,i) = u(j,i)*(u(j,i+1)-u(j,i))/dx + v(j,i)*(u(j+1,i)-u(j,i))/dy - (u(j+1,i)-2*u(j,i)+u(j,i))/dy^2 + pgrad;
elseif i > 1 && i < nx
F(j,i) = (u(j,i+1)-u(j,i-1))/(2*dx) + (v(j+1,i)-v(j,i))/dy;
F(j+ny,i) = u(j,i)*(u(j,i+1)-u(j,i-1))/(2*dx) + v(j,i)*(u(j+1,i)-u(j,i))/dy - (u(j+1,i)-2*u(j,i)+u(j,i))/dy^2 + pgrad;
elseif i == nx
F(j,i) = (u(j,i)-u(j,i-1))/dx + (v(j+1,i)-v(j,i))/dy;
F(j+ny,i) = u(j,i)*(u(j,i)-u(j,i-1))/dx + v(j,i)*(u(j+1,i)-u(j,i))/dy - (u(j+1,i)-2*u(j,i)+u(j,i))/dy^2 + pgrad;
end
end
end
if j > 1 && j < ny
for i = 1:nx
if i == 1
F(j,i) = (u(j,i+1)-u(j,i))/dx + (v(j+1,i)-v(j-1,i))/(2*dy);
F(j+ny,i) = u(j,i)*(u(j,i+1)-u(j,i))/dx + v(j,i)*(u(j+1,i)-u(j-1,i))/(2*dy) - (u(j+1,i)-2*u(j,i)+u(j-1,i))/dy^2 + pgrad;
elseif i > 1 && i < nx
F(j,i) = (u(j,i+1)-u(j,i-1))/(2*dx) + (v(j+1,i)-v(j-1,i))/(2*dy);
F(j+ny,i) = u(j,i)*(u(j,i+1)-u(j,i-1))/(2*dx) + v(j,i)*(u(j+1,i)-u(j-1,i))/(2*dy) - (u(j+1,i)-2*u(j,i)+u(j-1,i))/dy^2 + pgrad;
elseif i == nx
F(j,i) = (u(j,i)-u(j,i-1))/dx + (v(j+1,i)-v(j-1,i))/(2*dy);
F(j+ny,i) = u(j,i)*(u(j,i)-u(j,i-1))/dx + v(j,i)*(u(j+1,i)-u(j-1,i))/(2*dy) - (u(j+1,i)-2*u(j,i)+u(j-1,i))/dy^2 + pgrad;
end
end
end
if j == ny
for i = 1:nx
if i == 1
F(j,i) = (u(j,i+1)-u(j,i))/dx + (v(j,i)-v(j-1,i))/dy;
F(j+ny,i) = u(j,i)*(u(j,i+1)-u(j,i))/dx + v(j,i)*(u(j,i)-u(j-1,i))/dy - (u(j,i)-2*u(j,i)+u(j-1,i))/dy^2 + pgrad;
elseif i > 1 && i < nx
F(j,i) = (u(j,i+1)-u(j,i-1))/(2*dx) + (v(j,i)-v(j-1,i))/dy;
F(j+ny,i) = u(j,i)*(u(j,i+1)-u(j,i-1))/(2*dx) + v(j,i)*(u(j,i)-u(j-1,i))/dy - (u(j,i)-2*u(j,i)+u(j-1,i))/dy^2 + pgrad;
elseif i == nx
F(j,i) = (u(j,i)-u(j,i-1))/dx + (v(j,i)-v(j-1,i))/dy;
F(j+ny,i) = u(j,i)*(u(j,i)-u(j,i-1))/dx + v(j,i)*(u(j,i)-u(j-1,i))/dy - (u(j,i)-2*u(j,i)+u(j-1,i))/dy^2 + pgrad;
end
end
end
end
surf(F)
or am I missing something?
3 comentarios
Ellson Chow
el 21 de Ag. de 2020
Alan Stevens
el 21 de Ag. de 2020
So you want to find the values of u and v that make F zero everywhere? In that case you need to pass u and v to blayer, not x (the values of which are fixed). i.e. you want fsolve to find values of u and v that set all the Fs to zero.
Abdallah Daher
el 15 de Mzo. de 2022
Were you able it out? I am currently trying to write an explicit finite difference scheme for a flat plate boundary layer
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