How can I plot integral function for fun3 ?

3 vues (au cours des 30 derniers jours)
laila elatrash
laila elatrash le 4 Nov 2019
fun3 = fun1 - fun 2 , where;
fun1= @(x1) (i*w*x1./U)*(-1./r.^3)+(3*(x1*x1)./(r.^5));
fun2=fun2= @(x1) exp(i*w*x1./U).*(((k2.^2)*x1*x1./r.^3)*exp(-k2*r+k*x1)-(k2*k*x1*1./(r.^2))*exp(-k2*r+k*x1)-(k2*1./(r.^2))*exp(-k2*r+k*x1)...
+(2*k2*x1*x1./(r.^4))*exp(-k2*r+k*x1)-(k2*k*x1*1./(r.^2))*exp(-k2*r+k*x1)+((k.^2)*1./r)*exp(-k2*r+k*x1)...
-(k*1*x1./(r.^3))*exp(-k2*r+k*x1)-(k2*x1*x1./(r.^4))*exp(-k2*r+k*x1)+(k*x1*1./(r.^3))*exp(-k2*r+k*x1)...
+(1./(r.^3))*exp(-k2*r+k*x1)-(3*x1*x1./(r.^5))*exp(-k2*r+k*x1));
where: x2=0; ru=1; mu=1; w=0.01; U=1;
r = sqrt((x1).^2 + (x2).^2 + (x3).^2); k2 =sqrt((k.^2)+(h.^2)); h =sqrt(-i*ru*w./mu);

Réponse acceptée

Nadir Altinbas
Nadir Altinbas le 4 Nov 2019
at the first stage you should define a boundry
  1 commentaire
laila elatrash
laila elatrash le 4 Nov 2019
you means interval values integral?
[a,b] = [-inf , x1]
is it what you means?

Connectez-vous pour commenter.

Plus de réponses (0)

Catégories

En savoir plus sur Just for fun dans Help Center et File Exchange

Tags

Aucun tag saisi pour le moment.

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by