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For a physics assignment we are analyzing an anharmonic oscillator whose force is given by: $$ F =-kx + \frac{kx^3}{a^2},$$ where $k$ and $a$ are the spring constant and an arbitrary positive constant respectively. One of the questions is to find $x(t)$ for a particular initial velocity of $${v_0}^2 = \frac{ka^2}{2m}.$$ Separating variables I find that $${v(x)} = \sqrt{\frac{ka^2}{2m}-\frac{k}{m}x^2\:+\frac{kx^4}{2ma^2}}.$$ So then $x(t)$ is given by the integral in the title which I cannot solve, $$\int \frac{1}{\sqrt{\frac{ka^2}{2m}-\frac{k}{m}x^2\:+\frac{kx^4}{2ma^2}}}dx.$$ Any help would be much appreciated.

Edit: My professor suggested using the identity $$\frac{2a}{a^2 -b^2} = \frac{1}{a-b} + \frac{1}{a+b},$$ and that the problem then becomes 'logarithimically easy'.

Tom
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2 Answers2

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This is a special function called elliptic integral. For the integrand assuming the special form as in your problem, you are in luck since its coefficient in the denominator makes it a complete square, and you can use the answer provided by Sou.

Hans
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Just observe $$\int \frac{1}{\sqrt{\frac{ka^2}{2m}-\frac{k}{m}x^2\:+\frac{kx^4}{2ma^2}}}dx = \int \frac{1}{\sqrt{\frac{k}{2ma^2}(x^2-a^2)^2}} dx$$ and then using substitution like $x = a \sin \theta$ to solve the integral ?

Kelvin Lois
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  • If I do that substitution I get an answer proportional to $\tanh(x/a)$, for positive x and a messy logarithm for general x. I'm satisfied with that answer but am still curious how to use my prof's hint. Do you see any way to use it? Thank you – Tom Sep 12 '17 at 00:58
  • Maybe you use that here $\frac{2a}{(a^2-x^2)}$ before you integrate ? – Kelvin Lois Sep 12 '17 at 01:04