May you help me please to continue my syytem seconder order DE function?

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Nadim Mhanna
Nadim Mhanna le 30 Sep 2017
Réponse apportée : Josh Meyer le 2 Oct 2017
function [dF1dx,dF2dx]=funode1(x,F)
dF1dx=[F1(2);(Q/K1)*F1(1)-P/K1];
dF2dx=[F2(2);(Q/K2)*F2(1)-P/K2];
function res12=myfunbc12(F1a,F1b,F2a,F2b)
res=[F1a(1);F1b(1)-F2b(1);F2a(1);F1a(2)-F2b(2)];
The boundary conditions are as follows
F1(0)=0;
F2(l)=0;
F1(l-u)=F2(l-u);
dF1/dx(l-u)=dF2/dx(l-u))
If this is true how to continue?
  2 commentaires
John D'Errico
John D'Errico le 30 Sep 2017
How to continue with what? You have code. Does it do what you need? If not, then what does it lack? How can we read your mind?
Nadim Mhanna
Nadim Mhanna le 30 Sep 2017
which ode type i should use ode15 or bvp4c or other ?

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Josh Meyer
Josh Meyer le 2 Oct 2017
Since you have boundary conditions you'll want to use bvp4c or bvp5c. See Boundary Value Problems in the doc for more info.

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