By Jimmy Apablaza By Jimmy Apablaza

This problem is described in Page 321-322, Section 7.6 of the A first Course in Differential Equations textbook, 8ED (ISBN 0-534-41878-3).

Figure 1. Coupled Pendulum.‎

Problem Statement

Consider the double-pendulum system consisting of a pendulum attached to another pendulum shown in Figure 1.

Assumptions:

• the system oscillates vertically under the influence of gravity.
• the mass of both rod are neligible
• no dumpung forces act on the system
• positive direction to the right.

The system of differential equations describing the motion is nonlinear

${\displaystyle (m_{1}+m_{2})l_{1}^{2}\theta _{1}^{\prime \prime }+m_{2}l_{1}l_{2}\theta _{2}^{\prime \prime }cos(\theta _{1}-\theta _{2})+m_{2}l_{1}l_{2}(\theta _{2}^{\prime })^{2}sin(\theta _{1}-\theta _{2})+(m_{1}+m_{2})l_{1}gsin\theta _{1}=0}$

${\displaystyle m_{2}l_{1}^{2}\theta _{2}^{\prime \prime }+m_{2}l_{1}l_{2}\theta _{1}^{\prime \prime }cos(\theta _{1}-\theta _{2})-m_{2}l_{1}l_{2}(\theta _{1}^{\prime })^{2}sin(\theta _{1}-\theta _{2})+m_{2}l_{2}gsin\theta _{2}=0}$

In order to linearize these equations, we assume that the displacements ${\displaystyle \theta _{1}}$ and ${\displaystyle \theta _{2}}$ are small enough so that ${\displaystyle cos(\theta _{1}-\theta _{2})\approx 1}$ and ${\displaystyle sin(\theta _{1}-\theta _{2})\approx 0}$. Thus,

${\displaystyle (m_{1}+m_{2})l_{1}^{2}\theta _{1}^{\prime \prime }+m_{2}l_{1}l_{2}\theta _{2}^{\prime \prime }+(m_{1}+m_{2})l_{1}g\theta _{1}=0}$

${\displaystyle m_{2}l_{1}^{2}\theta _{2}^{\prime \prime }+m_{2}l_{1}l_{2}\theta _{1}^{\prime \prime }+m_{2}l_{2}g\theta _{2}=0}$

Solution

Since our concern is about the motion functions, we will assign the masses ${\displaystyle m_{1}}$ and ${\displaystyle m_{2}}$, the rod lenghts ${\displaystyle l_{1}}$ and ${\displaystyle l_{1}}$, and gravitational force ${\displaystyle g}$ constants to different variables as follows,

${\displaystyle A=(m_{1}+m_{2})l_{1}^{2}\quad B=m_{2}l_{1}l_{2}\quad C=(m_{1}+m_{2})l_{1}g\quad D=m_{2}l_{1}^{2}\quad E=m_{2}l_{2}g}$

Hence,

${\displaystyle A\theta _{1}^{''}+B\theta _{2}^{''}+C\theta _{1}=0}$

${\displaystyle D\theta _{2}^{''}+B\theta _{1}^{''}+E\theta _{2}=0}$

Solving for ${\displaystyle \theta _{1}^{''}}$ and ${\displaystyle \theta _{2}^{''}}$ we obtain,

${\displaystyle \theta _{1}^{''}=-\left({\dfrac {B}{A}}\right)\theta _{2}^{''}-\left({\dfrac {C}{A}}\right)\theta _{1}}$

${\displaystyle \theta _{2}^{''}=-\left({\dfrac {B}{D}}\right)\theta _{1}^{''}-\left({\dfrac {E}{D}}\right)\theta _{2}}$

Therefore,

${\displaystyle \theta _{1}^{''}=-\left({\dfrac {CD}{AD+B^{2}}}\right)\theta _{1}-\left({\dfrac {BE}{AD+B^{2}}}\right)\theta _{2}}$

${\displaystyle \theta _{2}^{''}=\left({\dfrac {BC}{AD+B^{2}}}\right)\theta _{1}-\left({\dfrac {AE}{AD+B^{2}}}\right)\theta _{2}}$

State Space

${\displaystyle {\begin{bmatrix}\theta _{1}^{'}\\\theta _{1}^{''}\\\theta _{2}^{'}\\\theta _{2}^{''}\end{bmatrix}}={\widehat {A}}\,{\underline {x}}(t)+{\widehat {B}}\,{\underline {u}}(t)={\begin{bmatrix}0&1&0&0\\&&&\\{\dfrac {-CD}{AD+B^{2}}}&0&{\dfrac {-BE}{AD+B^{2}}}&0\\&&&\\0&0&0&1\\&&&\\{\dfrac {BC}{AD+B^{2}}}&0&{\dfrac {-AE}{AD+B^{2}}}&0\\\end{bmatrix}}{\begin{Bmatrix}\theta _{1}\\\theta _{1}^{'}\\\theta _{2}\\\theta _{2}^{'}\end{Bmatrix}}+{\widehat {0}}}$

Plugging the constants yields,

${\displaystyle {\begin{bmatrix}\theta _{1}^{'}\\\theta _{1}^{''}\\\theta _{2}^{'}\\\theta _{2}^{''}\end{bmatrix}}={\begin{bmatrix}0&1&0&0\\&&&\\{\dfrac {-l_{1}(m_{1}+m_{2})g}{l_{1}^{2}(m_{1}+m_{2})+l_{2}^{2}m_{2}}}&0&{\dfrac {-l_{2}^{2}m_{2}g}{l_{1}(l_{1}^{2}(m_{1}+m_{2})+l_{2}^{2}m_{2})}}&0\\&&&\\0&0&0&1\\&&&\\{\dfrac {l_{2}(m_{1}+m_{2})g}{l_{1}^{2}(m_{1}+m_{2})+l_{2}^{2}m_{2}}}&0&{\dfrac {-l_{2}(m_{1}+m_{2})g}{l_{1}^{2}(m_{1}+m_{2})+l_{2}^{2}m_{2}}}&0\\\end{bmatrix}}{\begin{Bmatrix}\theta _{1}\\\theta _{1}^{'}\\\theta _{2}\\\theta _{2}^{'}\end{Bmatrix}}}$

Laplace Transform