implementation of the bisection method

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Ivan De Fazio
Ivan De Fazio on 5 Nov 2022
Edited: Torsten on 5 Nov 2022
Hi everyone,
I'd like to use the bisection method to find the V values that will make my set of functions equal to zero (V_ls).
func=@(V) -Pstar+(R*T*(((1-c)/V)-((c/b)*log(1-b/V)))-a*c/V^2)
note that a,b,c,R retain always the same value, the difference that makes my set of equations is the values of Pstar,T that will then determine the V value that I'm looking for.
I successfully managed to do this process for one given function, by setting the value of Pstar and T.
I'd like to be able to repeat this process automatically for different values of Pstar and T that are stored in a vector.
Pstar=Pstars(i)
T=temp(i)
%i have 30 values (given by the problem) in each vector, i.e. i=30
%range values where the solution can be found.
V=0.0320;
lim_max= 0.1951;
%bisection method
number_iterations= 100 % i can set this value arbitrarily
for i=1:number_iterations
Vls=(V+lim_max)/2;
if fun(Vls)<0
lim_max=Vls;
else
V=Vls;
end
end
I suppose I should put this for cicle into a new one, but I really cant manage to get the results I want:
an output vector V_ls that contains each solution given by the bisection method for each of my 30 equations.
Many thanks !
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Torsten
Torsten on 5 Nov 2022
Yes, I understand this. But the code above does not work for one pair. How should I change it for 30 pairs then ?
If you want to try it on your own:
Make a function "bisection" that is called with the necessary inputs (temp(i),Pstar(i),fun,maximum number of iterations,...) and returns V(i). Then call this function in a loop like:
for i=1:30
Vsol(i) = bisection(temp(i),Pstar(i),fun,Vinit,max_iter,...);
end
Ivan De Fazio
Ivan De Fazio on 5 Nov 2022
Edited: Ivan De Fazio on 5 Nov 2022
Ran in:
thanks for your help and patience.
This is my code that works for one iteration:
clear all;
close all;
clc;
%fixed inputs
c=25.8972;
b=0.0320;
a=0.7535;
R=0.0821;
Vc=0.1951;
%chosen couple T-Pstar
T=385.15;
Pstar=36.6133;
fun=@(V) -Pstar+(R*T*(((1-c)/V)-((c/b)*log(1-b/V)))-a*c/V^2);
n=100;
V=b;
limmax=Vc;
for i=1:n
Vls=(V+limmax)/2;
if fun(Vls)<0
limmax=Vls;
else
V=Vls;
end
end
sol=Vls;
disp(sol)
0.1038
i've tried for over an hour to create a function just as you said but it keeps giving me the same result.
I've been stuck with this for days.
thanks again

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Accepted Answer

Torsten
Torsten on 5 Nov 2022
Edited: Torsten on 5 Nov 2022
Ran in:
%fixed inputs
c=25.8972;
b=0.0320;
a=0.7535;
R=0.0821;
Vc=0.1951;
% Generate 30 artificial (Pstar,T) pairs to test
Pstar_array = 36.6133*(1.05).^(1:30);
T_array = 385.15+(1:30);
% Call bisection for 30 (Pstar,T) pairs
for i=1:numel(T_array)
Pstar = Pstar_array(i);
T = T_array(i);
fun = @(V) -Pstar+(R*T*(((1-c)/V)-((c/b)*log(1-b/V)))-a*c/V^2);
V(i) = bisection(fun,b,Vc);
error(i) = fun(V(i));
end
figure(1)
plot(1:30,V)
figure(2)
plot(1:30,error)
function sol = bisection(fun,V0,Vc)
n=100;
V=V0;
limmax=Vc;
for i=1:n
Vls=(V+limmax)/2;
if fun(Vls)<0
limmax=Vls;
else
V=Vls;
end
end
sol=Vls;
end

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