Need help while defining ode function for bvp4c/bvp5c/ode45 solve
Afficher commentaires plus anciens
I wanted to define system of ode functions for my higher order problems. I have differential equations are :
x=cosy
z=siny
y'=sqrt((lambda*f*p*siny/x)+(siny^2/x^2)-(2/lambda^2)+(2*cosy/lambda)-(3*a*p^2*lambda^2/2))
y"=(-y'*x'/lambda*x)-(cosy/x)-(f*p'/4)-(f*x'*p/4*x)+(y'*cosy/x)+(siny/lambda)+(lambda*f*p*cosy/4*x)+(siny*cosy/x^2)+(mu_1*(sin(y) - mu_2*cos(y)) / (2 * x^2)
where, y,x,p are functions of s. and f,lambda and a are constants.
while defining ode function for my bvp solve, I write the code as
function dydx = odefun2(t, y, params)
lambda = params.lambda;
a = params.a;
f = params.f;
mu_1=params.mu_1;
mu_2=params.mu_2;
y1 = y(1); % y
y2 = y(2); % x
y3 = y(3); % z
y4 = y(4); % p
y5 = y(5); % p_dot
y6 = cos(y1); %x_dot
y7 = sin(y1); %z_dot
ydot = sqrt((lambda * f * y4 * sin(y1) / y2) + (sin(y1)^2 / y2^2) - (2 / lambda^2) + (2 * cos(y1) / lambda) - (3 * a * (y4^2) * lambda^2)/2);
yddot = -((ydot * cos(y1) / (lambda * y2))) - (cos(y1) / y2) - (0.5 * y5 / 4) - (0.5 *cos(y1) * y4 / (4 * y2)) + (ydot * cos(y1) / y2) + (sin(y1) / lambda) + (0.5 * lambda * y4 * cos(y1) / (4 * y2)) + (sin(y1) * cos(y1) / y2^2) + (mu_1*(sin(y1) - mu_2*cos(y1)) / (2 * y2));
dydx = [y5; y6; y7; ydot; yddot];
end
But I have no equation for p'. And I am not sure that how can I relate x and z with x' and z' respectively. Also I don't have any differential equation for p'. how I should relate p and p'?
need some suggestions.
11 commentaires
You cannot work with two different differential equations for one and the same solution variable (in your case y).
Or is it an implicit equation for p that
d/dt (y'(t)) = y''(t)
or written out
d/dt (sqrt((lambda*f*p*siny/x)+(siny^2/x^2)-(2/lambda^2)+(2*cosy/lambda)-(3*a*p^2*lambda^2/2))) =
(-y'*x'/lambda*x)-(cosy/x)-(f*p'/4)-(f*x'*p/4*x)+(y'*cosy/x)+(siny/lambda)+(lambda*f*p*cosy/4*x)+(siny*cosy/x^2)+(mu_1*(sin(y) - mu_2*cos(y)) / (2 * x^2)
?
Md Sojib
le 6 Juin 2024
No. I say that you can't solve a system of differential equations that contains contradictory equations.
Say you have a system
y'' = 1
y' = 3*t
Then differentiating the last equation gives
y'' = d/dt (3*t) = 3
contradicting the first equation
y'' = 1
Or did you arrive at the equation for y'' by just differentiating y' with respect to t ? Then the equation for y'' is superfluous.
Md Sojib
le 6 Juin 2024
Torsten
le 6 Juin 2024
You didn't answer my questions.
Torsten
le 6 Juin 2024
The equations for x and z make no problem because they don't need to be solved. Once you have y, you also have x and z. And expressions for x or z in the equation for y can be substituted by cos(y) and sin(y).
So you need to solve for y and p. What are the equations and what are the boundary/initial conditions ?
Md Sojib
le 6 Juin 2024
I tried to explain that you cannot use both equations for y because they contradict each other.
And you didn't supply an equation for p. Or - a question you did not yet answer - should p be deduced from the equation
d/dt (y'(t)) = y''(t)
or - written out -
d/dt ( sqrt((lambda*f*p*siny/x)+(siny^2/x^2)-(2/lambda^2)+(2*cosy/lambda)-(3*a*p^2*lambda^2/2)) ) =
(-y'*x'/lambda*x)-(cosy/x)-(f*p'/4)-(f*x'*p/4*x)+(y'*cosy/x)+(siny/lambda)+(lambda*f*p*cosy/4*x)+(siny*cosy/x^2)+(mu_1*(sin(y) - mu_2*cos(y)) / (2 * x^2)
?
Torsten
le 6 Juin 2024
Then you will have to dive into the derivation of the equations again. If you don't know the equation for a function within your problem formulation, how do you want to solve it ?
Réponses (0)
Catégories
En savoir plus sur Ordinary Differential Equations dans Centre d'aide et File Exchange
le 6 Juin 2024
le 6 Juin 2024
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
