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How is it possible to deduce from the equation $\ddot\theta +k\sin(2\theta)=0$ where $\theta=\theta(t)$ and $\tan(\theta)={b(t)\over a(t)}$, $k$ is constant, and $a(0)=a_0$, $a(t)^2+ b(t)^2=a_0^2$. that $a(t)=a_0\operatorname{sech}(c t)$ where $c$ is a constant?

Thanks

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    @EugeneShvarts: $b(t)$ is such that $a^2+b^2=a_0^2$. Sorry for omitting that!2012-07-16

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The comment you added, that $a^2 + b^2 = a_0^2$, makes things considerably more reasonable. Note that already, this yields $ \tan^2\theta = \frac{b^2}{a^2} = \frac{a_0^2 - a^2}{a^2} = \frac{a_0^2}{a^2} - 1 ~~, $ and as $\tan^2\theta + 1 =\sec^2\theta$ , we have that $\sec\theta = a_0/a$ , or $a = a_0 \cos \theta$ .

As for the differential equation, we can reduce the order once using the trick of 'integrating to a square'; not sure what the / any formal name is. Multiply by $\dot\theta$ to find that $ \dot\theta \ddot\theta = -k \dot\theta\sin(2\theta) ~~. $ Noting that both sides are perfect differentials, integrate with respect to $\theta$, including the constant: $ \frac{1}{2}\dot\theta^2 = \frac{k}{2}\cos(2\theta) + c ~~. $ A double angle for cosine is $\cos(2\theta) = 2\cos^2\theta - 1 = 2a^2/a_0^2 - 1$. Hence, absorbing constants, $ \dot\theta^2 = \frac{2k}{a_0^2}a^2 + c ~~. $ Note that $\dot a = -a_0 \dot\theta \sin \theta$ , and so $\dot a^2 = \dot\theta^2 (a_0^2 - a^2)$. Now at this point I have to make the undue assumption that you've been given an additional piece of information that would allow us to force $c = 0$; otherwise the solution does not come out tractable whatsoever. Connecting these pieces, we now have that $ \frac{a_0}{\sqrt{2k}}\frac{\dot a}{a\sqrt{a_0^2-a^2}} = 1 ~~. $ Wolfram or a textbook will confirm that the LHS has the same form as the derivative of arc-hyperbolic secant (assuming $a\ge 0$), and integrating precisely we find that $ \text{asech}\left(\frac{a}{a_0}\right) = \sqrt{2k} t + C ~~, $ for some new constant $C$. Using the initial condition for $a$ yields $C = 0$, and so finally $ a = a_0 ~\text{sech} (\sqrt{2k} t) ~~. $

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    Sure, the condition is necessary to set off the chain of events that gives $a$ with respect to $t$. Don't forget to see how it is that you can set the first constant of integration to 0 (eg. something like $\dot\theta(0) = \sqrt{2k}$).2012-07-17