Get all graphs from ODE23

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Ali Awada
Ali Awada 2020 年 12 月 29 日
コメント済み: Ali Awada 2020 年 12 月 30 日
Hello all,
I am trying to write a code using the ode23 to solve for a free vibration damped SDOF. I wrote the following code without using the ode23 function:
function f=free_viscous(m,c,k,x0,v0,n,tspan);
t=[0:tspan:tspan*n];
wn=sqrt(k/m);
cc=2*m*wn;
zeta=c/cc;
phi=atan((v0+zeta*wn*x0)/(x0*wn*sqrt(1-zeta^2)));
X=sqrt(x0^2*wn^2+v0^2+2*x0*v0*zeta*wn)/(wn*sqrt(1-zeta^2))
syms d;
x=X*cos(wn*d*sqrt(1-zeta^2)-phi)*exp(-zeta*wn*d);
v=diff(x,d)
a=diff(v,d)
for i=1:101
x(i)=X*cos(wn*t(i)*sqrt(1-zeta^2)-phi)*exp(-zeta*wn*t(i));
v(i)=X*wn*exp(-t(i)*wn*zeta)*sin(phi - t(i)*wn*(1 - zeta^2)^(1/2))*(1 - zeta^2)^(1/2) - X*wn*zeta*exp(-t(i)*wn*zeta)*cos(phi - t(i)*wn*(1 - zeta^2)^(1/2));
a(i)=X*wn^2*exp(-t(i)*wn*zeta)*cos(phi - t(i)*wn*(1 - zeta^2)^(1/2))*(zeta^2 - 1) + X*wn^2*zeta^2*exp(-t(i)*wn*zeta)*cos(phi - t(i)*wn*(1 - zeta^2)^(1/2)) - 2*X*wn^2*zeta*exp(-t(i)*wn*zeta)*sin(phi - t(i)*wn*(1 - zeta^2)^(1/2))*(1 - zeta^2)^(1/2);
end
plot(t,x,t,v,t,a);
Running code for the previous is(i was able to get all of my graphs):
clc
clear all
free_viscous(450,1000,26519.2,0.539657,1,100,0.025)
I was able to write the ode23 code but i didnt know how to use MATLAB to plot the acceleration. I managed only the displacement and velocity:
function f=dfunc2(t,x);
m=450;
c=1000;
k=26519.2;
f=zeros(2,1);
f(1)=x(2);
f(2)=(-c/m)*x(2)-(k/m)*x(1);
the main code is:
clc
clear all
tspan=[0:0.025:2.5];
x0=[0.539657;1];
[t,x]=ode23('dfunc2',tspan,x0);
plot(t,x(:,1),t,x(:,2));
Can anyone please help? this is a personal endeavour and not related to any homework.
Thanks!

採用された回答

Star Strider
Star Strider 2020 年 12 月 30 日
Try this approach:
function f=dfunc2(t,x);
m=450;
c=1000;
k=26519.2;
f=zeros(2,1);
f(1)=x(2);
f(2)=(-c/m)*x(2)-(k/m)*x(1);
end
tspan=[0:0.025:2.5];
x0=[0.539657;1];
[t,x]=ode23(@dfunc2,tspan,x0);
acc = gradient(x(:,2))./gradient(t); % Calculate Acceleration By Taking The Numerical Derivative Of Velocity
figure
plot(t,x(:,1),t,x(:,2), t,acc);
grid
.

その他の回答 (1 件)

Jan
Jan 2020 年 12 月 30 日
Vectorize the function to be integrated: Then it accepts a matrix with different X values also:
tspan = 0:0.025:2.5;
x0 = [0.539657; 1];
[t, x] = ode23(@dfunc2, tspan, x0);
% Call dfunc2 to get the accelerations:
a = dfunc2(t, x.').'; % x must be transposed twice
figure;
plot(t, x(:,1), t, x(:,2), t, a(:, 2));
end
function f = dfunc2(t, x)
m = 450;
c = 1000;
k = 26519.2;
f = [x(2, :); ...
(-c/m) * x(2, :) - (k/m) * x(1, :)];
end
a(:, 1) is the same as x(:, 2) as expected.
  3 件のコメント
Jan
Jan 2020 年 12 月 30 日
The function to be integrated is called from the integrator with the input x as a column vector. In the output of the integrator the trajectory is saved as row vectors for each time point. To use the output of the integrator as input for the function to be integrated, it must be transposed. To have the output of the acceleration in the same format as the trajectory, you have to transpose again.
Obtaining the derivative directly is more accurate than a numerical differentiation by gradient.
Ali Awada
Ali Awada 2020 年 12 月 30 日
Thanks for the detailed explanation. Definitely a better approach!

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