Invalid initial condition error

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EDOARDO GELMI 2025년 4월 12일

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https://kr.mathworks.com/matlabcentral/answers/2176244-invalid-initial-condition-error

편집: Torsten 2025년 4월 12일

I have to solve the sistem of differential equation odesys with the condition imposed in bc vector. I obtain the "Invalid Initial Condition" at the line where v is defined, even if the domain for the boundary condition is correct. I must keep it a symbolic solution and a0 is a costant.

%% ANALYTICAL MODEL FOR A DCB SPECIMEN UNDER THE CONDITION OF PRESCRIBED DISPLACEMENTS
%% Linear Elastic Phase
%---------
syms x d v0(x) v1(x) v2(x) Lcz 
%---------
phi0 = -diff(v0,x);
M0 = E*I*diff(v0,x,2);
T0 = E*I*diff(v0,x,3);
phi1 = -diff(v1,x);
M1 = E*I*diff(v1,x,2);
T1 = E*I*diff(v1,x,3);
phi2 = -diff(v2,x);
M2 = E*I*diff(v2,x,2);
T2 = E*I*diff(v2,x,3);
%---------
ode_0 = diff(v0,x,4) == 0;
ode_1 = diff(v1,x,4) - 2*w*(lambda^2)*diff(v1,x,2) + (lambda^4)*v1 == 0;
ode_2 = diff(v2,x,4) + 2*ps*(k^2)*diff(v2,x,2) - k^4*(v2 - d_c/2) == 0;
%---------
syms xL xR xI
xL = -a0 - Lcz;
xI = -Lcz;
xR = L - a0 - Lcz;
c1 = v0(xL) == d/2;
c2 = M0(xL) == 0;
c3 = v0(xI) == v2(xI);
c4 = phi0(xI) == phi2(xI);
c5 = M0(xI) == M2(xI);
c6 = T0(xI) == T2(xI);
c7 = v1(0) == v2(0);
c8 = phi1(0) == phi2(0);
c9 = M1(0) == M2(0);
c10 = T1(0) == T2(0);
c11 = v1(xR) == 0;
c12 = phi1(xR) == 0;
%---------
odesys = [ode_0; ode_1; ode_2];
bc = [c1; c2; c3; c4; c5; c6; c7; c8; c9; c10; c11; c12];
v = dsolve(odesys, bc);
%---------
v1_sol(x,d,Lcz) = simplify(v.v1);
v0_sol(x,d,Lcz) = simplify(v.v0);
v2_sol(x,d,Lcz) = simplify(v.v2);
phi0_sol(x,d,Lcz) = diff(v0_sol,x);
phi1_sol(x,d,Lcz) = diff(v1_sol,x);
phi2_sol(x,d,Lcz) = diff(v2_sol,x);
M0_sol(x,d,Lcz) = E*I*diff(v0_sol,x,2);
M1_sol(x,d,Lcz) = E*I*diff(v1_sol,x,2);
M2_sol(x,d,Lcz) = E*I*diff(v2_sol,x,2);
T0_sol(x,d,Lcz) = E*I*diff(v0_sol,x,3);
T1_sol(x,d,Lcz) = E*I*diff(v1_sol,x,3);
T2_sol(x,d,Lcz) = E*I*diff(v2_sol,x,3);
%---------
d_lim = solve(v0_sol(0,d,0) == d_0/2,d);
% d_max = solve(v0_sol(0,d,0) == d_0/2,d);
% Lcz_max = solve(v2_sol(-Lcz,d_max,Lcz) - d_c/2 == 0, x,[0 50]);
[d_max, Lcz_max] = solve([v1_sol(0,d,Lcz) - d_0/2 == 0, v2_sol(-Lcz,d_max,Lcz) - d_c/2 == 0],[d,Lcz]);

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EDOARDO GELMI 2025년 4월 12일

편집: EDOARDO GELMI 2025년 4월 12일

MATLAB Online에서 열기

This are the costants, and yes i tried without the bc and it works but of course i need to fine the integration costants

E = 70000;           %Young's Modulus [MPa]
h = 6;               %Section Height [mm]
b = 25;              %Section Width [mm]
A = b*h;             %Section Area [mm^2]
I = (b*h^3)/12 ;     %Inertial Momentum [mm^4]
L = 200;             %Specimen Lenght [mm]
ni = 0.33;           %Poisson's Ratio [-]
G = E/(2*(1 + ni));  %Shear Modulus [MPa]
mu = 0.5;            %Shear Factor [-]
A_t = mu*A;          %Shear Section Area [mm^2]
sigma_max = 10;      %Softening Tension [MPa]
d_0 = 0.025;         %Softening Opening [mm]
d_c = 0.1;           %Critical Opening [mm]
a0 = 50;             %Initial Crack Lenght [mm]
%---------
lambda = ((2*b*sigma_max)/(E*I*d_0))^0.25;                      %Constant depending on the bending stiffness of DCB arms and the softening part
k = ((2*b*sigma_max)/(E*I*(d_c-d_0)))^0.25;                     %Costant depending on the linear-elastic stiffness of the interface
w = ((E*I)/(2*G*A_t))*(lambda)^0.5 == 0;                        %Constant depending on bending and shear stiffness of DCB arms, and lambda
ps = ((E*I)/(2*G*A_t))*(k)^0.5 == 0;                            %Constant depending on bending and shear stiffness of DCB arms, and k
%---------
F_lim = (E*I*d_0*lambda^3)/(2*(a0*lambda + sqrt(2*(1+w))));     %Force at which the damage start propagating in the interface
%---------
f1 = linspace(0,F_lim,51);                                      %Generic interval of force in order to simulate the prescribed displacement test in the LE phase 
d1 = ((2*f1*a0)/(3*E*I))*(1+((3*sqrt(2*(1+w)))/(a0*lambda^3))*(a0*lambda*sqrt(2*(1+w))+1+(a0*lambda)^2)); %Crack mouth opening

Torsten 2025년 4월 12일

편집: Torsten 2025년 4월 12일

MATLAB Online에서 열기

In the below code, you have to solve a 12x12 linear system of equations to get the integration constants as functions of d and Lcz. This can take a while (if it is successful at all).

It would be much easier if you could prescribe numerical values for d and Lcz.

E = 70000;           %Young's Modulus [MPa]
h = 6;               %Section Height [mm]
b = 25;              %Section Width [mm]
A = b*h;             %Section Area [mm^2]
I = (b*h^3)/12 ;     %Inertial Momentum [mm^4]
L = 200;             %Specimen Lenght [mm]
ni = 0.33;           %Poisson's Ratio [-]
G = E/(2*(1 + ni));  %Shear Modulus [MPa]
mu = 0.5;            %Shear Factor [-]
A_t = mu*A;          %Shear Section Area [mm^2]
sigma_max = 10;      %Softening Tension [MPa]
d_0 = 0.025;         %Softening Opening [mm]
d_c = 0.1;           %Critical Opening [mm]
a0 = 50;             %Initial Crack Lenght [mm]
%---------
lambda = ((2*b*sigma_max)/(E*I*d_0))^0.25;                      %Constant depending on the bending stiffness of DCB arms and the softening part
k = ((2*b*sigma_max)/(E*I*(d_c-d_0)))^0.25;                     %Costant depending on the linear-elastic stiffness of the interface
w = ((E*I)/(2*G*A_t))*(lambda)^0.5 == 0;                        %Constant depending on bending and shear stiffness of DCB arms, and lambda
ps = ((E*I)/(2*G*A_t))*(k)^0.5 == 0;                            %Constant depending on bending and shear stiffness of DCB arms, and k
%---------
F_lim = (E*I*d_0*lambda^3)/(2*(a0*lambda + sqrt(2*(1+w))));     %Force at which the damage start propagating in the interface
%---------
f1 = linspace(0,F_lim,51);                                      %Generic interval of force in order to simulate the prescribed displacement test in the LE phase 
d1 = ((2*f1*a0)/(3*E*I))*(1+((3*sqrt(2*(1+w)))/(a0*lambda^3))*(a0*lambda*sqrt(2*(1+w))+1+(a0*lambda)^2)); %Crack mouth opening
%% ANALYTICAL MODEL FOR A DCB SPECIMEN UNDER THE CONDITION OF PRESCRIBED DISPLACEMENTS
%% Linear Elastic Phase
%---------
syms x d v0(x) v1(x) v2(x) Lcz 
%---------
ode_0 = diff(v0,x,4) == 0
ode_1 = diff(v1,x,4) - 2*w*(lambda^2)*diff(v1,x,2) + (lambda^4)*v1 == 0
ode_2 = diff(v2,x,4) + 2*ps*(k^2)*diff(v2,x,2) - k^4*(v2 - d_c/2) == 0
sol = dsolve([ode_0,ode_1,ode_2]);
v0(x) = sol.v0;
v1(x) = sol.v1;
v2(x) = sol.v2;
phi0 = -diff(v0,x);
M0 = E*I*diff(v0,x,2);
T0 = E*I*diff(v0,x,3);
phi1 = -diff(v1,x);
M1 = E*I*diff(v1,x,2);
T1 = E*I*diff(v1,x,3);
phi2 = -diff(v2,x);
M2 = E*I*diff(v2,x,2);
T2 = E*I*diff(v2,x,3);
xL = -a0 - Lcz;
xI = -Lcz;
xR = L - a0 - Lcz;
c1 = v0(xL) == d/2;
c2 = M0(xL) == 0;
c3 = v0(xI) == v2(xI);
c4 = phi0(xI) == phi2(xI);
c5 = M0(xI) == M2(xI);
c6 = T0(xI) == T2(xI);
c7 = v1(0) == v2(0);
c8 = phi1(0) == phi2(0);
c9 = M1(0) == M2(0);
c10 = T1(0) == T2(0);
c11 = v1(xR) == 0;
c12 = phi1(xR) == 0;
c = [c1,c2,c3,c4,c5,c6,c7,c8,c9,c10,c11,c12];
vars = symvar(c);
[A,b] = equationsToMatrix(c,'Vars',vars(1:12));
constants = A\b
%constants = solve(c,v(1:12));   % very time-consuming
v1(x) = subs(v1(x),vars(1:12),constants)
v2(x) = subs(v2(x),vars(1:12),constants)
v3(x) = subs(v3(x),vars(1:12),constants)

EDOARDO GELMI 2025년 4월 12일

Yeah i know it should work faster with a numerical solution but unfortunatly i cannot use it. I can try your script, right now mine is working but it's very time consuming (it's been an hour untill now)

EDOARDO GELMI 2025년 4월 12일

Thank you very much, i'll let you know if it works

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Invalid initial condition error

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