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how to store each value of T0 in a matrix of order (l,240)?

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CYC12
CYC12 on 27 Sep 2017
Closed: MATLAB Answer Bot on 20 Aug 2021
for t=b:dt:240
for x=a:dx:l
for n=d:dn:5
cn=(2/n*pi)*(((40/n*pi)*(sin(n*pi)))-(40*cos(n*pi)));
T0=cn*(exp(-(n^2)*(pi^2)*t/(l^2)))*(sin(n*pi*x/l));
end
end
end
  1 Comment
Roger Stafford
Roger Stafford on 28 Sep 2017
Your request implies that the triple nested for-loops will iterate L*240 times. That is certainly not evident and would depend very much on the values of b, a, d, dt, dx, dn, and L. Please tell us what these seven values are.

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Answers (1)

KSSV
KSSV on 28 Sep 2017
t=b:dt:240 ;
x=a:dx:l ;
n=d:dn:5 ;
T0 = zeros(length(t),length(x),length(n)) ;
for i = 1:length(t)
for j = 1:length(x)
for k = length(n)
cn=(2/n(k)*pi)*(((40/n(k)*pi)*(sin(n(k)*pi)))-(40*cos(n(k)*pi)));
T0(i,j,k)=cn*(exp(-(n(k)^2)*(pi^2)*t(i)/(l^2)))*(sin(n(k)*pi*x(j)/l));
end
end
end

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