substitute value for variable
3 views (last 30 days)
Show older comments
I have created a code to solve a differential in terms of one variable (all C variables and B are constants and defined previously). Now I want to plug a value in for that variable into the differential equation, but it won't let me. I tried using the 'subs' function, but that doesn't work. Help?
syms I1 I2
F1 = C1*(exp(C2*(I1-3)-1))-((C1*C2)/2)*(I2-3);
W1 = 0;
F2 = piecewise(x<1,W1,1<x<lambda,W2,x>lambda,W3);
Wo = F1 + F2;
Wo1 = diff(Wo,I1);
Wo2 = diff(Wo,I2);
clear I1 I2
I1 = trace(B);
I2 = .5*((trace(B))^2+trace(B^2));
subs(Wo1,I1,I2);
2 Comments
Stephen23
on 21 Feb 2018
Here's the whole code. It all works until the last step.
% Define coefficients for all the fiber families
syms x p Wx I1 I2
pres = [p 0 0
0 p 0
0 0 p];
theta = [2 122 241];
C1 = .00124;
C2 = 1.07;
C3 = [1.03*10^-7 1.67*10^-7 1.59*10^-7];
C4 = [26.6 35 38];
lambda = [2.78 5.6 7.74];
C5 = C3.*C4.*lambda.*(exp(C4.*(lambda-1)));
% Define displacement matrix and B matrix
F = [x 0 0
0 1/sqrt(x) 0
0 0 1/sqrt(x)];
B = F*transpose(F);
% Define F1 as given
F1 = C1*(exp(C2*(I1-3)-1))-((C1*C2)/2)*(I2-3);
W1 = 0;
% Run pipline for each fiber family to get individual strain energy
% functions
for n = 1:3
a = [cos(theta(n))
-sin(theta(n))
0];
W2 = C3(n)*exp(C4(n)*(x-1))-1;
W3 = C5(n);
F2 = piecewise(x<1,W1,1<x<lambda(n),W2,x>lambda(n),W3);
Wo(n) = F1 + F2;
Wo1(n) = diff(Wo(n),I1);
Wo2(n) = diff(Wo(n),I2);
ao(n) = transpose(a(n))*a(n);
end
% Plug in values for a matrix and invariantes
clear I1 I2
I1 = trace(B);
I2 = .5*((trace(B))^2+trace(B^2));
%Substitute in the invariant values
for n=1:3
subs(Wo1(n),I1);
subs(Wo2(n),I2);
end
Accepted Answer
Karan Gill
on 21 Feb 2018
You shouldn't overwrite I1. Overwriting I1 will not automatically substitute for it in Wo1. Instead, remove I1 = trace(B); and use
>> I1_val = trace(B)
I1_val =
2/x + x^2
>> Wo1 = subs(Wo1,I1,I1_val)
Wo1 =
[ piecewise(x < 1 | 139/50 < x | x in Dom::Interval(1, 139/50), (3317*exp((107*I1)/100 - 421/100))/2500000), piecewise(x < 1 | 28/5 < x | x in Dom::Interval(1, 28/5), (3317*exp((107*I1)/100 - 421/100))/2500000), piecewise(x < 1 | 387/50 < x | x in Dom::Interval(1, 387/50), (3317*exp((107*I1)/100 - 421/100))/2500000)]
This way, you separate the symbolic variable from the value you want to substitute, which keeps the meaning of variables in your code clean.
2 Comments
Karan Gill
on 21 Feb 2018
Great! :) (And I understand overwriting I1 was the intuitive thing to do.)
More Answers (0)
See Also
Categories
Find more on Get Started with MuPAD in Help Center and File Exchange
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!