1D Heat equation in Matlab with heat Flux at one side

조회 수: 8 (최근 30일)
Steffen B.
Steffen B. 2022년 6월 20일
편집: Torsten 2022년 6월 21일
I’m solving the 1D heat equation with Matlab pdepe function.
The geometry is a steel rod of 1m length, which has a constant temperature on the right side and a constant flux on the other side.
I’m struggeling a little bit with specifying the value of p and q.
Here is the code I use:
function [c,f,s] = heatequation(x,t,u,dudx)
rho=7850; % density
cp=420; % heat capacity
lambda=40;% conductivity
c = rho*cp;
f = lambda*dudx;
s = 0;
end
function u0 = ic(x)
Tini=300; % initial temperature at t= 0 s
u0 = Tini;
end
function [pl,ql,pr,qr] = bc(xl,ul,xr,ur,t)
pl = 0;
ql = 10; % Flux at the left end = 10 W/m2
pr = ur-300; % Temperature at the rigth end = 300 K
qr = 0
end
m = 0;
sol = pdepe(m,@heatequation,@ic,@bc,x,t);
I'm not sure if I wrote the BC's correct? The notation with p and q is still confusing
  댓글 수: 3
Torsten
Torsten 2022년 6월 20일
편집: Torsten 2022년 6월 21일
If your boundary condition at the left end is
-lambda*dT/dx = 10
, then
pl = 10, ql = 1
Steffen B.
Steffen B. 2022년 6월 20일
편집: Steffen B. 2022년 6월 20일
@Torsten thanks for your fast answer. You are rigth, I mixed someting up in the BC function. Now it's working just fine
function [pl,ql,pr,qr] = bc(xl,ul,xr,ur,t)
pl = 10; % Flux at the left end = 10 W/m2
ql = 1;
pr = ur-300; % Temperature at the rigth end = 300 K
qr = 0
end

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