Aaron Boyd's Assignment 8: Difference between revisions

Latest revision as of 11:16, 19 November 2010

I decided to use laplace transforms to solve a pendulum equation. A pendulum with a weight of mass m and a massless rod length L is released from an initial angle $\theta <sub>0</sub>$ . Find a function to determine the angle at any time t. The summation of forces yields ${\begin{aligned}F_{x}&=T\sin(\theta )\\F_{y}&=T\cos(\theta )-mg=0\end{aligned}}$

Polar coordinates may be easier to use, lets try that.

${\begin{aligned}F_{r}&=T-mg\cos(\theta )=0\\F_{\theta }&=\sin(\theta )mg=maL\end{aligned}}$

${\begin{aligned}{\text{Now since }}F_{r}&=0{\text{ we can ignore it and look only at }}F_{\theta }.\\{\text{ Since we know }}F_{\theta }&=maL{\text{ and }}ma=mLa.{\text{ We can conclude}}\end{aligned}}$

${\begin{aligned}\sin(\theta )*mg=mL{\ddot {\theta }}\end{aligned}}$

canceling the common mass term and rearranging a bit we get.

${\begin{aligned}{\ddot {\theta }}-(g/L)\sin(\theta )=0\\\\{\text{Now we take the laplace transform of this.}}\\{\text{Unfortunately the laplace transform of that is horrible. Long, and impossible to solve.}}\\{\text{So we use the approximation }}\\\\\sin(\theta )=\theta \\{\text{ where }}\theta {\text{ is small. }}\\\\{\text{(I tried to leave }}sin(\theta ){\text{ in the equation.}}\\{\text{After 4 hours and many wolframalpha.com timeouts I gave up) }}\\\\{\text{with this new equation we get:}}\\\\g*{\frac {\theta (t)}{L+s^{2}}}*\theta (t)-s\theta (0)-{\dot {\theta }}(0)=0\\\\{\text{we know that }}\theta (0)=\theta _{0}{\text{ and }}{\dot {\theta }}(0)=0\\\\\\{\text{solving for }}\theta (t){\text{ we get}}\\\\\theta (t)=s*{\frac {\theta _{0}}{({\frac {-g}{L}}+S^{2})}}\\\\\\{\text{now we take the inverse laplace transform of that which yields }}\\\\\\\theta (t)=\theta _{0}cos(t{\sqrt {(}}{\frac {g}{L}}))\\\end{aligned}}$

You can solve for the same thing from the cartesian coordinates. Taking:

${\begin{aligned}F_{x}&=T\sin(\theta )=0\\{\text{ and recognizing }}T=mg\\\end{aligned}}$

you can arrive at the same answer

@@ Line 1: / Line 1: @@
-I decided to use laplace transforms to solve a pendulum equation. A pendulum with a weight of mass m and a massless rod length L is released from an initial angle \theta<sub>0</sub>. Find a function to determine the angle at any time t.
+I decided to use laplace transforms to solve a pendulum equation. A pendulum with a weight of mass m and a massless rod length L is released from an initial angle <math>\theta<sub>0</sub></math>. Find a function to determine the angle at any time t.
 The summation of forces yields
 <math>\begin{align}
@@ Line 5: / Line 5: @@
         F_y &= T\cos(\theta)-mg = 0
 \end{align}</math>
 Polar coordinates may be easier to use, lets try that.
-now:
@@ Line 31: / Line 29: @@
 canceling the common mass term and rearranging a bit we get.
-<math>\begin{align}
+<math> \begin{align}
 \ddot\theta - (g/L)\sin(\theta) = 0\\
 \\
@@ Line 60: / Line 58: @@
 \\
 \\
-\theta(t) = cosh(t\sqrt(\frac{g}{L}))\\
+\theta(t) = \theta_0cos(t\sqrt(\frac{g}{L}))\\
+\end{align}
+</math>
+You can solve for the same thing from the cartesian coordinates. Taking:
+<math>\begin{align}
+        F_x &= T\sin(\theta) = 0\\
+\text { and recognizing } T = mg\\
 \end{align}</math>
+you can arrive at the same answer

Aaron Boyd's Assignment 8: Difference between revisions

Latest revision as of 11:16, 19 November 2010

Navigation menu

Search