Would you please send the whole error message? It's problematic for anyone trying to help you find an error that might occur in any line that contains an array.
Info
Diese Frage ist geschlossen. Öffnen Sie sie erneut, um sie zu bearbeiten oder zu beantworten.
Error with array bounds
2 Ansichten (letzte 30 Tage)
Ältere Kommentare anzeigen
Dear Community,
I am creating a function and unfortunately I dont know why I am getting this error "Index in position 1 exceeds array bounds." Can you please help me?
function [ABD_dome_2] = mt_laminate(Nsection,neutral_axis,Nplies)
%% Input Material Data
%% Laminate - Aluminum 2219 T6 alloy
%Nplies = 1; %Number of plies
E = 73800; % Young's Modulus in [N/mm^2]
t2 = 4.8; % Half Thickness of the thickest segment of the tank in [mm]
t1 = 1.5; % Thickness of the thinnest segment of the tank in [mm]
t = [1.5,4.8,2];
%% Temperature Gradients - Tank + Reinforcement Cylindrical Shell
deltaT = 0;
nu = 0.33; % Poisson's ratio
Coefficient = E/(1-nu^2);
% C matrix (material coordinates)- reduced stiffness matrix
Q = Coefficient * [1,nu,0;nu,1,0;0,0,(1-nu^2)/(2*(1+nu))];
%% Classical laminar theory
T = 25; % Temperature in [°C]
a = 1;
% m = 3; To use it in case I need HIBEF
Ai = zeros(3,3);
% A = cell(Nsection,1);
% B = cell(Nsection,1);
% D = cell(Nsection,1);
Bi = zeros(3,3);
Di = zeros(3,3);
NTi = zeros(3,1);
MTi = zeros(3,1);
Qbari = zeros(3,3);
NT_plot =[];
nt_plot = zeros(3,1);
ABD = cell(Nsection,1);
for n = 1:Nsection
for m = 1:Nplies
if (t(n)/2 - neutral_axis ==0)
zbar(n) = 0 ;
A{n,:} = Ai + Q*t(n);
B{n,:} = Bi + Q * t(n) * zbar(n);
D{n,:} = Di + Q * (t(n) * zbar(n)^2 + t(n)^3 / 12);
ABD1 = {A{n,:},B{n,:};B{n,:},D{n,:}};
ABD11 = cell2mat(ABD1);
%ABD{1,:}= {A,B;B,D};
ABD{1,:} = ABD11;
else
zbar_up(n,:) = (t(n) - neutral_axis)/2;
t_up(n,:) = (t(n) - neutral_axis);
zbar_down(n,:) = (neutral_axis)/2;
t_down(n,:) = neutral_axis;
A_up{n,:} = Ai + Q * t_up(n,:);
B_up{n,:} = Bi + Q * t_up(n,:) * zbar_up(n,:);
D_up{n,:} = Di + Q * (t_up(n,:) * zbar_up(n,:)^2 + t_up(n,:)^3 / 12);
A_down{n,:} = Ai + Q * t_down(n,:);
B_down{n,:} = Bi + Q * t_down(n,:) * zbar_down(n);
D_down{n,:} = Di + Q * (t_down(n,:) * zbar_down(n,:)^2 + t_down(n,:)^3 / 12);
ABD_up{n,:} = {A_up{n,:},B_up{n,:};B_up{n,:},D_up{n,:}};
ABD_up_Matrix = cell2mat(ABD_up{n,:});
ABD_down{n,:} = {A_down{n,:},B_down{n,:};B_down{n,:},D_down{n,:}};
ABD_down_Matrix = cell2mat(ABD_down{n,:});
ABD{n,:} = ABD_up_Matrix - ABD_down_Matrix;
end
end
%% Differential System Matrix
ABD_cyl_15 = ABD{1,:};
ABD_cyl_48 = ABD{2,:};
ABD_dome_2 = ABD{3,:};
%% 1.5 mm cylindrical Segment
r_cyl = 550;
A_cyl_15 = [0, 1/r_cyl - ABD_cyl_15(1,2)/(ABD_cyl_15(1,1) *r_cyl),0,1/(ABD_cyl_15(1,1)*r_cyl),0,0,0;
1/r_cyl,0,1,0,0,0,0;
0,0,0,0,0,1/(ABD_cyl_15(4,4)*r_cyl),0;
0 , 0 , 0 , 0 , 1/r_cyl ,0,0;
0 , ABD_cyl_15(2,2)/r_cyl - ABD_cyl_15(1,2)*ABD_cyl_15(2,1)/(ABD_cyl_15(1,1)*r_cyl), 0,- (1/r_cyl) + ABD_cyl_15(2,1)/(ABD_cyl_15(1,1)*r_cyl),0,0,0.36;
0 , 0, 0, 0, -1, 0 ,0;
0,0,0,0,0,0,0];
for m = 1:90
A_15_cell{m,:} = A_cyl_15;
end
%% 4.8 mm cylindrical Segment
rho = 1100;
r_cyl = 550;
A_48_cell = cell(60,1);
A_48_cell{1,:} = zeros(7,7);
% A_cyl_48(1,1) = - ABD_cyl_48(2,1) * ABD_cyl_48(4,4) + ABD_cyl_48(2,4) * ABD_cyl_48(1,4);
%t2_a31 = - ABD_cyl_48(1,2)* ABD_cyl_48(1,4) + ABD_cyl_48(2,4)* ABD_cyl_48(1,1);
%
% t2_a41 = - ABD_cyl_48(2,1)*ABD_cyl_48(4,4)*ABD_cyl_48(1,2) + ABD_cyl_48(2,1)*ABD_cyl_48(1,4)*ABD_cyl_48(1,5) + ABD_cyl_48(2,4)*ABD_cyl_48(1,4)*ABD_cyl_48(1,2) - ABD_cyl_48(2,4)*ABD_cyl_48(1,5)*ABD_cyl_48(1,1);
% t2_a46 = - ABD_cyl_48(2,1)* ABD_cyl_48(1,4) + ABD_cyl_48(2,4)*ABD_cyl_48(1,1);
%
% det_t2 = - ABD_cyl_48(1,1)* ABD_cyl_48(4,4) + ABD_cyl_48(1,4)^2;
% A_cyl_48 = [0, 1/r_cyl - ABD_cyl_48(1,2)/(ABD_cyl_48(1,1)*r_cyl),0,1/(ABD_cyl_48(1,1)*r_cyl),0,-ABD_cyl_48(1,4)/(det_t2*r_cyl),0;
% 1/r_cyl,0,1,0,0,0,0;
% 0,-(t2_a31)/(r_cyl*det_t2),0,-ABD_cyl_48(1,4)/(r_cyl*det_t2),0,-ABD_cyl_48(1,1)/(r_cyl*det_t2),0;
% 0 , 0 , 0 , 0 , 1/r_cyl ,0,0;
% 0 , (ABD_cyl_48(2,2)/r_cyl - 1/(r_cyl*det_t2)*(t2_a41)), 0,- 1/rho + (1* t2_a11)/(r_cyl*det_t2) ,0,-((1*t2_a46)/(r_cyl*det_t2)),0.36;
% 0 , 0, 0 , 0, -1, 0,0;
% 0,0,0,0,0,0,0];
%
%
for i = 1:60
A_48_cell{i,:} =[0,1/r_cyl - ABD_cyl_48(1,2)/(ABD_cyl_48(1,1) *r_cyl),0,1/(ABD_cyl_48(1,1)*r_cyl),0,0,0;1/r_cyl,0,1,0,0,0,0;0,0,0,0,0,1/(ABD_cyl_48(4,4)*r_cyl),0;0 , 0 , 0 , 0 , 1/r_cyl ,0,0;0 , ABD_cyl_48(2,2)/r_cyl - ABD_cyl_48(1,2)*ABD_cyl_48(2,1)/(ABD_cyl_48(1,1)*r_cyl), 0,- (1/r_cyl) + ABD_cyl_48(2,1)/(ABD_cyl_48(1,1)*r_cyl),0,0,0.36;0 , 0, 0, 0, -1, 0 ,0;0,0,0,0,0,0,0];
end
end
0 Kommentare
Antworten (1)
Robert Mende
am 20 Nov. 2020
3 Kommentare
Robert Mende
am 20 Nov. 2020
So your error appears within a part of the code that you commented out. Do you still need this part?
Diese Frage ist geschlossen.
Siehe auch
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
Sie können auch eine Website aus der folgenden Liste auswählen:
Amerika
- América Latina (Español)
- Canada (English)
- United States (English)
Europa
- Belgium (English)
- Denmark (English)
- Deutschland (Deutsch)
- España (Español)
- Finland (English)
- France (Français)
- Ireland (English)
- Italia (Italiano)
- Luxembourg (English)
- Netherlands (English)
- Norway (English)
- Österreich (Deutsch)
- Portugal (English)
- Sweden (English)
- Switzerland
- United Kingdom (English)
Asien-Pazifik
- Australia (English)
- India (English)
- New Zealand (English)
- 中国
- 日本Japanese (日本語)
- 한국Korean (한국어)