Solving coupled second order differential equations
Afficher commentaires plus anciens
Hi,
I constantly get an error that I do not know how to resolve when I run this code. Any help would be greatly appreciated. The Force function applies a force of 50N @ t = 0 and equals 0 at all other time steps.
syms c k m1 m2 x1(t) x2(t) t F Y;
% 1st and 2nd derivative
dx1 = diff(x1);
d2x1 = diff(x1,2);
dx2 = diff(x2);
d2x2 = diff(x2,2);
% Defining equations
Eq1 = d2x1 == -(c/m1)*(dx1-dx2) - (k/m1)*(x1(t)-x2(t)) + F/m1;
Eq2 = d2x2 == -(c/m2)*(dx1-dx2) + (k/m2)*(x1(t)-x2(t));
[VF,subs] = odeToVectorField(Eq1, Eq2);
ftotal = matlabFunction(VF,'Vars',{t,Y,F,c,k,m1,m2});
m1 = 10;
m2 = 20;
c = 30;
k = 5;
F = @(t) Force(t);
tspan = [0 1];
ic = [8 0 0 0];
[t,Y] = ode45(@(t,Y) ftotal(t,Y,F,c,k,m1,m2), tspan, ic);
figure
plot(t, Y)
grid
legend(string(subs))
1 commentaire
Torsten
le 6 Sep 2022
The value of the "Force" function at t=0 must somehow be part of the initial conditions ic.
As part of the differential equations, it won't influence the result.
Réponse acceptée
Something like this?
m1 = 10;
m2 = 20;
c = 30;
k = 5;
tspan = [0 1];
ic = [8 0 0 0];
[t,Y] = ode45(@(t,Y) ftotal(t,Y,c,k,m1,m2), tspan, ic);
figure
plot(t, Y)
xlabel('t'), ylabel('y and dydt')
grid
legend('y1','dy1/dt','y2','dy2dt')
function dYdt = ftotal(t,Y,c,k,m1,m2)
y1 = Y(1); dy1dt = Y(2);
y2 = Y(3); dy2dt = Y(4);
dYdt = [dy1dt;
-(c/m1)*(dy1dt - dy2dt) - (k/m1)*(y1 - y2) + 50*(t==0)/m1;
dy2dt;
-(c/m2)*(dy1dt - dy2dt) + (k/m2)*(y1 - y2)];
end
1 commentaire
Alan Stevens
le 6 Sep 2022
Instead of 50*(t==0)/m1; you could try 50*(t<0.01)/m1; but you still won't see an effect. However, if you try 5000*(t<0.01)/m1; you start to see an effect. If you try decreasing the 5000 to smaller values, towards 50, you see the effect getting smaller and smaller.
Plus de réponses (0)
Catégories
En savoir plus sur Symbolic Math Toolbox dans Centre d'aide et File Exchange
Produits
le 6 Sep 2022
le 6 Sep 2022
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
