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Undefined function or variable 'sigma_sj'. Error in m_phi_code (line 110) Ps_j = sigma_sj*(​N/2)*(3.14​/4)*d^2*0.​001; why this error is showing?

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Rajkumar
Rajkumar el 11 de Mzo. de 2023
Comentada: Walter Roberson el 11 de Mzo. de 2023
[SL: edited to format code]
%% M-Phi Curve
clc;
clear all;
close all;
% Input data
fck = 20; % Grade of concrete in N/mm^2
Fe = 415; % Grade of steel in N/mm^2
P = 300; % Axial compressive load in kN
% Phi = 0.00004; % Initial slope in per meter
N = 6; % Number of bars
D = 500; % Depth of the section in mm
B = 250; % Width of the section in mm
e_c = 50; % Effective cover in mm
d = 16; % Diameter of the bars in mm
Phi = 0.00001:0.00001:0.00004;
k = length(Phi);
M_total = zeros(1,length(k));
Phi = zeros(1,k);
%% Cross sectional area of the section
A = B*D; % Rectangular section Area in mm^2
%% Calculate strain under only axial compressive force
sigma_x = (P*1000)/(A); % Stress under axial compressive force in N/mm^2
% Quadratic equation solving
c = sigma_x/(0.45*fck);
a = 1;
b= -2;
delta = (b.^2)-(4*a*c);
if(delta < 0)
disp("Delta < 0 The equation does not have a real root");
elseif (delta == 0)
disp('The equation has only one real roots');
disp(-b./(2*a));
else
disp('The equation has two real roots');
epsilon_1 = 0.002*((-b+sqrt(delta))./(2*a));
epsilon_2 = 0.002*((-b-sqrt(delta))./(2*a));
end
epsilon = min(epsilon_1,epsilon_2);
disp(epsilon)
%% Finding depth of neutral axis
epsilon_max = input('Enter maximum stain value :');
for v = 1:k
Curvature = Phi(1,v);
epsilon_min = epsilon_max-(D*Curvature*0.001);
xu = (epsilon_max*D)/(epsilon_max-epsilon_min); % Depth of neutral axis in mm
if(xu > D)
disp("Neutral axis outside the section");
elseif(xu==D)
disp("Neutral axis is at the edge of the section");
elseif(0<=xu)&&(xu<=D)
disp("Neutral axis inside the section");
else
disp("Neutral axis is above the section");
end
%% Concrete stress, strain and force calculation
n = input('please enter number of concrete strips :');
Pc_0 = 0;
Mc_0 = 0;
for i = 0:n-1
for j = i
p_j = (D/n)*j + (D/(2*n));
epsilon_ci = (epsilon_max/xu)*(xu-p_j);
sigma_ci = 0.45*fck*(2*(epsilon_ci/0.002)-(epsilon_ci/0.002)^2);
P_ci = sigma_ci*B*(D/n)*0.001;
if (1 <= (i+1))&&((i+1) <= n/2)
M_ci = P_ci*(((D/2)-((D/(2*n))*(i+1)))/(i+1))*0.001;
elseif ((i+1) >= ((n/2)+1))
M_ci = P_ci*((((D/2)*(i-2))-(D/(2*n))))*0.001*(-1)^i;
end
end
Pc_total = Pc_0 + P_ci;
Pc_0 = Pc_total;
Mc_total = Mc_0 + M_ci;
Mc_0 = Mc_total;
end
disp(Pc_total)
disp(Mc_total)
%% Steel stress, strain and force calculation
s = input('please enter number of steel bar layers :');
Ps_0 = 0;
Ms_0 = 0;
e_0 = e_c;
fy = input('please enter the grade of steel :');
if (fy == 415)
for j = 0:s-1
e_j = e_0;
epsilon_sj = (epsilon_max/xu)*(xu-e_j);
if(epsilon_sj<0.00144)
sigma_sj = (288.7/0.00144)*epsilon_sj;
elseif(0.00144<=epsilon_sj)&&(epsilon_sj<=0.00163)
sigma_sj = 288.7 + (((306.7-288.7)/(0.00163-0.00144))*(epsilon_sj-0.00144));
elseif(0.00163<=epsilon_sj)&&(epsilon_sj<=0.00192)
sigma_sj = 306.7 + (((324.8-306.7)/(0.00192-0.00163))*(epsilon_sj-0.00163));
elseif(0.00192<=epsilon_sj)&&(epsilon_sj<=0.00241)
sigma_sj = 324.8 + (((342.8-324.8)/(0.00241-0.00192))*(epsilon_sj-0.00192));
elseif(0.00241<=epsilon_sj)&&(epsilon_sj<=0.00276)
sigma_sj = 342.8 + (((351.8-342.8)/(0.00276-0.00241))*(epsilon_sj-0.00241));
elseif(0.00276<=epsilon_sj)&&(epsilon_sj<=0.00380)
sigma_sj = 351.8 + (((360.9-351.8)/(0.00380-0.00276))*(epsilon_sj-0.00276));
elseif(epsilon_sj>0.00380)
sigma_sj = 360.9;
end
Ps_j = sigma_sj*(N/2)*(3.14/4)*d^2*0.001;
Ms_j = Ps_j*((D/2)-(e_c))*0.001*(-1)^(j);
e_0 = e_j + ((D-(2*e_c))/(s-1));
Ps_total = Ps_0 + Ps_j;
Ps_0 = Ps_total;
Ms_total = Ms_0 + Ms_j;
Ms_0 = Ms_total;
end
elseif (fy == 500)
for j = 0:s-1
e_j = e_0;
epsilon_sj = (epsilon_max/xu)*(xu-e_j);
if(epsilon_sj<0.00174)
sigma_sj = (347.8/0.00174)*epsilon_sj;
elseif(0.00174<=epsilon_sj)&&(epsilon_sj<=0.00195)
sigma_sj = 347.8 + (((369.6-347.8)/(0.00195-0.00174))*(epsilon_sj-0.00174));
elseif(0.00195<=epsilon_sj)&&(epsilon_sj<=0.00226)
sigma_sj = 369.6 + (((391.3-369.6)/(0.00226-0.00195))*(epsilon_sj-0.00195));
elseif(0.00226<=epsilon_sj)&&(epsilon_sj<=0.00277)
sigma_sj = 391.3 + (((413.0-391.3)/(0.00277-0.00226))*(epsilon_sj-0.00226));
elseif(0.00277<=epsilon_sj)&&(epsilon_sj<=0.00312)
sigma_sj = 413.0 + (((423.9-413.0)/(0.00312-0.00277))*(epsilon_sj-0.00277));
elseif(0.00312<=epsilon_sj)&&(epsilon_sj<=0.00417)
sigma_sj = 423.9 + (((434.8-423.9)/(0.00417-0.00312))*(epsilon_sj-0.00312));
elseif(epsilon_sj>0.00417)
sigma_sj = 434.8;
end
Ps_j = sigma_sj*(N/2)*(3.14/4)*d^2*0.001;
Ms_j = Ps_j*((D/2)-(e_c))*0.001*(-1)^(j);
e_0 = e_j + ((D-(2*e_c))/(s-1));
Ps_total = Ps_0 + Ps_j;
Ps_0 = Ps_total;
Ms_total = Ms_0 + Ms_j;
Ms_0 = Ms_total;
end
end
disp(Ps_total)
disp(Ms_total)
%% Check
P_total = Pc_total + Ps_total;
if((P-2)<=P_total)&&(P_total<= (P+2))
disp('ok')
elseif(P_total>P)
disp('Redo with less epsilon_max value')
elseif(P_total<P)
disp('Redo with more epsilon_max value')
end
M_total(1,k) = Mc_total + Ms_total;
disp(M_total)
disp(P_total)
%% Plot
hold on
plot(Phi,M_total(1,k))
end

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Respuestas (1)

Steven Lord
Steven Lord el 11 de Mzo. de 2023
What value should sigma_sj have if none of the conditions in your large if / elseif / elseif / ... statement are satisfied by the computed value of epsilon_sj? You might want to either define sigma_sj before that statement or include an else clause (not elseif) at the end as a fallback value.
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Walter Roberson
Walter Roberson el 11 de Mzo. de 2023
k is a scalar. plot(Phi,M_total(1,k)) is asking to plot a scalar

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