How to? - Complex numbers
Afficher commentaires plus anciens
dVdotdt= @(-(Whalf-1i.*w).*V + alfa.*Uin);
(Whalf-1i.*w) part is complex.
When I put the above in my equation I get 'Warning: Imaginary parts of complex X and/or Y arguments ignored'
I am not sure if my syntax is correct to be honest as my answer should be exponential but it is a straight line; also does ode handle complex well- maybe thats the reason my curve is flawed.
1 commentaire
You defined a function of two inputs, t and y yet you don'y use either of them in the function so it will just be a constant, defined by the variables you do give which, I assume, are in the workspace at the time you create this function handle. I have no idea where t and y are supposed to fit into your equation though.
Réponse acceptée
James Tursa
le 11 Fév 2019
E.g., for an anonymous function you need to give the input argument list first. E.g., for a generic derivative function that takes t and y as inputs, the syntax would be this:
dydt = @(t,y) some_expression_involving_t_and_y_goes_here;
11 commentaires
STP
le 12 Fév 2019
this is the complex equation ; should I be putting it as it is or in e^power form ? 
STP
le 12 Fév 2019
Yup; I tried that. But I get my output like :
instead of something like this -- 
madhan ravi
le 12 Fév 2019
Just reflect it.
STP
le 12 Fév 2019
Torsten
le 12 Fév 2019
Analytical solution is
V(t)=V0 - b/a ( 1- exp(a*(t-t0)) )
with
a = -(omega_half-1I*delta_omega)
b = 2*beta/(1+beta)*U_in
and V(t0)=V0.
Compare to your solution and check the constants.
STP
le 12 Fév 2019
If I am doing it with the analytical solution the curve is a little sharper (the bold curve) whereas with the equation it is flatter ; is it a matlab thing?
Attaching the code for the equation and solution both:
beta=5;
alfa = 2.*beta/(beta+1);
tau1=2.0;
tau2=2.4;
Tc=2.0;
gamma=alfa.*(2-exp(-tau1));
% Time frames
t1=0:0.01:4.2;
t2 = 4.2:0.01:5;
t3 = 5:0.01:8;
dEeA = @(t,y) alfa/Tc * exp(-t/Tc);
tspan = t1;
y0 = 0;
[T1 EeA1] = ode15s(dEeA,tspan,y0);
plot(t1,EeA1)
hold on
figure(1)
dEeB = @(t,y)-gamma *exp(-(t - tau1)/Tc)/Tc ;
tspan = t2;
y0 = EeA1(end);
[T1 EeB1] = ode15s(dEeB,tspan,y0);
plot(t2, EeB1)
Ee2 = EeB1(end);
dEeC = @(t,y) -Ee2*exp(-(t-tau2)/Tc)/Tc;
tspan = t3;
y0 = Ee2;
[T1 EeC1] = ode15s(dEeC,tspan,y0);
plot(t3, EeC1)
hold off
omega_half = 0.090;
delta_omega = 0.16;
beta = 5;
U_in = 0.30;
y1 = 0;
alfa = 2*beta/(1+beta);
t1= [0 4.2]
dV1dt = @(t,V) -(omega_half-1i*delta_omega)*V +alfa*U_in;
[t1 V1] = ode15s(dV1dt, t1, y1)
plot(t1, V1)
hold on
t2 = [4.2 5]
U_in1 = -0.30;
y2= V1(end);
dV2dt = @(t,V) -(omega_half-1i*delta_omega)*V +alfa*U_in1;
[t2, V2] = ode15s(dV2dt, t2, y2)
plot(t2, V2)
hold on
t3 = [5 8]
U_in3 = 0;
y3 = V2(end);
dV3dt = @(t,V) -(omega_half-1i*delta_omega)*V +alfa*U_in3;
[t3, V3] = ode15s(dV2dt, t3, y3)
plot(t3, V3)
Torsten
le 12 Fév 2019
The differential equations and their solutions are completely different. So you can't expect that the solution curves coincide.
STP
le 12 Fév 2019
Plus de réponses (0)
Catégories
En savoir plus sur Loops and Conditional Statements dans Centre d'aide et File Exchange
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
