Solving a System of 2nd Order Nonlinear ODEs

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mpz 2022 年 4 月 2 日

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コメント済み: mpz 2022 年 4 月 3 日

Hi, I need help with setting up the code for the below 2 non-linear differential equations. I do not have symbolic toolbox. Below is how I tried it but didn't work. Any help will be appreciated.

clear all;clc
function dydt=mbd(M,m,g,lc,k)
y1=y(1);
y2=y(2);
z1=z(1); %z1
z2=z(2); %z2
y5=(1/(M+m))*((m*l/2)*(sin(z(1)))*y6 + (m*l/2)*(cos(z(1)))*(z(2))^2 ...
               -c*y(2)-k*y(1));
y6=(3/(m*l^2))*((m*l/2)*(sin(z(1)))*y5 - (m*g*l/2)*(sin(z(1))));
dydt=[y1;y2;y3;y4;y5;y6];
end

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Sam Chak 2022 年 4 月 3 日

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Hey @mpz

It doesn't work that way because you have created an algebraic loop error where

depends y5 that is your

, which depends on y6 that is

from the beginning.

I'll try to explain how to solve it without using difficult math or matrix operations. Here, the governing equations are given by

Equation 5:

Equation 6:

Equation 6 can be rearranged to become

so that it can substituted into Equation 5 to eliminate

and then be simplified to become

... Equation (7).

Note the the right-hand side of Equation 7 does not have the term

. Subtituting Equation 7 into the simplified Equation 6 yields

... Equation (8).

Now you can rewrite the mbd ode function in state-space form correctly. Note that the ODEs should have only 4 states (instead of 6 states):

If you find my technical explanation is helpful, please vote and accept the answer.

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Sam Chak 2022 年 4 月 3 日

Hi @mpz

Sorry, a little late. The code should look like this. Also thank @Torsten for showing the corrections.

function mpz

close all

clc

tspan = [0 20]; % time span of simulation

y0 = [0.5 pi/3 0 0]; % initial values

[t, y] = ode45(@(t, y) odefcn(t, y), tspan, y0);

plot(t, y, 'linewidth', 1.5)

grid on

xlabel('Time, t [sec]')

ylabel({'$x,\; \theta,\; \dot{x},\; \dot{\theta}$'}, 'Interpreter', 'latex')

title('Time responses of the system states')

legend({'x', '$\theta$', '$\dot{x}$', '$\dot{\theta}$'}, 'Interpreter', 'latex', 'location', 'best')

end

function dydt = odefcn(t, y) % Ordinary Differenctial Equations

dydt = zeros(4,1);

g = 0.2;

M = 2;

m = pi/4;

l = 1;

C = 0.25;

k = 0.5;

dydt(1) = y(3);

dydt(2) = y(4);

dydt(3) = (1/(M + m - (3/4)*(m*(sin(y(2)))^2)))*(((m*l/2)*(cos(y(2))*(y(4))^2)) - ((3/4)*(m*g*((sin(y(2)))^2))) - (C*(y(3))) - (k*(y(1))));

dydt(4) = ((3*sin(y(2)))/(2*l*(M + m - (3/4)*(m*(sin(y(2)))^2))))*(((m*l/2)*(cos(y(2))*(y(4))^2)) - ((3/4)*(m*g*((sin(y(2)))^2))) - (C*(y(3))) - (k*(y(1)))) - ((3*g*sin(y(2)))/(2*l));

end

Result: