0 Stimmen

Hello,
I am trying to solve the a matrix using solve function, not able to figure it out.
clear all
clc
syms x1 x2 M k L dx1 dx2 p
% Displacement of the bar
xg=(x1+x2)/2;
% Rotation of the bar
thi=(x2-x1)/L;
%moment of inertia
J=M*L^2/12;
dxg=(dx1+dx2)/2;
dthi=(dx2-dx1)/L;
% Kinetic energy
KE=0.5*((M*dxg^2)+(J*dthi^2));
% Potenial Engergy
PE=0.5*(2*k*x1^2+3*k*x2^2);
u=[x1 x2];
du=[dx1;dx2];
s=solve(KE==0.5.*transpose(du)*p*du);

3 Kommentare
1 älteren Kommentar anzeigen 1 älteren Kommentar ausblenden

Walter Roberson
Walter Roberson am 17 Mär. 2019
s = solve(EXPRESSION, p)
LOKESH UDATHA
LOKESH UDATHA am 18 Mär. 2019
Thanks a lot, but a small problem
my p is a 2*2 matrix but I am getting sloution as a scalar.
Walter Roberson
Walter Roberson am 18 Mär. 2019
No it isn't . u is 1 x 2 so transpose of u is 2 x 1. You cannot do 2 x 1 * 2 x 2 * 1 x 2 because none of the inner dimensions match. Your u would have to be 2 x 1 to fix that .
There is not enough information to isolate 2 x 2 p.

Melden Sie sich an, um zu kommentieren.

Melden Sie sich an, um diese Frage zu beantworten.

Antworten (1)

Sajeer Modavan
Sajeer Modavan am 17 Mär. 2019

0 Stimmen

Since you are solving with for p, result of 's' equal to 'p'
to confirm this, you can use following code (which is same as yours, but forcefully solving for 'p')
P = solve(KE==0.5.*transpose(du)*p*du,p);

1 Kommentar
-1 ältere Kommentare anzeigen -1 ältere Kommentare ausblenden

LOKESH UDATHA
LOKESH UDATHA am 18 Mär. 2019
Thanks a lot for replying,
but my p is a 2*2 matrix but I am getting p as a scalar.

Melden Sie sich an, um zu kommentieren.

Kategorien

Mehr zu Mathematics and Optimization finden Sie in Hilfe-Center und File Exchange

Tags

Gefragt:

LOKESH UDATHA
LOKESH UDATHA
am 17 Mär. 2019

Kommentiert:

Walter Roberson
Walter Roberson
am 18 Mär. 2019

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by