quarter to full region in matlab

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ljaseon
ljaseon am 11 Mai 2021
i have a some problem to make a full region
in my code that is just the thing only the qurter region
but i wanna make a full region so how can i get to there ? i have no special idea about how to do
in my code this quarter region is shown (+x,+y) region
this is the what i wanna figure that shown full region plus to this this picture that i make 3 dimension picture like first picture
%**************************************************************
% Using the finite difference method
% This program calculates the characteristic impedance of the transmission
% line shown in Figure 3.14
%*************************************************************************
clear all;format compact;
%Output;
%
% H NT Zo
% -----------------------
% 0.25 700 69.77
% 0.1 500 65.75
% 0.05 500 70.53
% 0.05 700 67.36
% 0.05 1000 65.50
H=0.05;
NT= 100;
A=2.5; B=2.5; D=0.5; W=1.0;
ER=2.35;
EO=8.81E-12;
U=3.0E+8;
NX=A/H;
NY=B/H;
ND=D/H;
NW=W/H;
VD=100.0;
%CALCULATE CHARGE WITH AND WITHOUT DIELECTRIC
ERR=1.0;
for L=1:2
E1=EO;
E2=EO*ERR;
%INITIALIZATION
V=zeros(NX+2,NY+2);
%SET POTENTIAL ON INNER CONDUCTOR(FIXED NODES) EQUAL TO VD
V(2:NW+1,ND+2)=VD;
%CALCULATE POTENTIAL AT FREE NODES
P1=E1/(2*(E1+E2));
P2=E2/(2*(E1+E2));
for K=1:NT
for I=-0:NY-1
for J=0:NY-1
if( (J==ND)&(I<=NW))
%do nothing
elseif(J==ND)
%IMPOSE BOUNDARY CONDITION AT THE INTERFACE
V(I+2,J+2)=0.25*(V(I+3,J+2)+V(I+1,J+2))+....
P1*V(I+2,J+3)+P2*V(I+2,J+1);
elseif(I==0)
%IMPOSE SYMMETRY CONDITION ALONG Y-AXIS
V(I+2,J+2)=(2*V(I+3,J+2)+V(I+2,J+3)+V(I+2,J+1))/4.0;
elseif(J==0)
%IMPOSE SYMMETRY CONDITION ALONG X-AXIS
V(I+2,J+2)=(V(I+3,J+2)+V(I+1,J+2)+2*V(I+2,J+3))/4.0
else
V(I+2,J+2)=(V(I+3,J+2)+V(I+1,J+2)+V(I+2,J+3)+V(I+2,J+1))/4.0;
end
end
end
%Animation of calculation
figure(1),surf(V),colorbar,title([num2str(K),'/',num2str(NT)])
%drawnow
end
-----------------------------------------------------------------------this is the code that can figure
%NOW,CALCULATE THE TOTAL CHARGE ENCLOSED IN A
%RECTANGULAR PATH SURROUNDING THE INNER CONDUCTOR
IOUT=round((NX+NW)/2);
JOUT=round((NY+ND)/2);
%SUM POTENTIAL ON INNER AND OUTER LOOPS
for K=1:2
SUM= E1*SUM(V(3:IOUT+1,JOUT+2))....
+E1*V(2,JOUT+2)/2+E2*V(IOUT+2,2)/2;
for J=1:JOUT-1
if(J<ND)
SUM=SUM+E2*V(IOUT+2,J+2);
elseif(J==ND)
SUM=SUM+(E1+E2)*V(IOUT+2,J+2)/2;
else
SUM=SUM+E1*V(IOUT+2,J+2);
end
end
if K==1
SV(1)=SUM;
end
IOUT=IOUT-1;
JOUT=JOUT-1;
end
SUM=SUM+2.0*E1*V(IOUT+2,JOUT+2);
SV(2)=SUM;
Q(L)=abs(SV(1)-SV(2));
ERR=ER;
end
% FINALLY,CALCULATE Zo
Co=4.0*Q(1)/VD;
C1=4.0*Q(2)/VD;
ZO=1.0/(U*sqrt(C0*C1));
disp([H,NT,ZO])
--------------------this is just the code that after the figure to calculate to some question

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