Circular orbit in a harmonic potential

JEE Advanced 2018 Paper 1, Question 1

The potential energy of a particle of mass $m$ at a distance $r$ from a fixed point $O$ is given by $V(r)=k r^{2} / 2$ , where $k$ is a positive constant of appropriate dimensions. This particle is moving in a circular orbit of radius $R$ about the point $O$ . If $v$ is the speed of the particle and $L$ is the magnitude of its angular momentum about $O$ , which of the following statements is (are) true?

$v=\sqrt{\frac{k}{2 m}} R$
$v=\sqrt{\frac{k}{m}} R$
$L=\sqrt{m k} R^{2}$
$L=\sqrt{\frac{m k}{2}} R^{2}$

Solution

The force due to the given potential is

(1) $\begin{equation*} {\bf F} = -\frac{\partial V}{\partial r} \hat{\bf r} = -k r \hat{\bf r} . \end{equation*}$

The mass also experiences a centrifugal force due to its circular motion,

(2) $\begin{equation*} {\bf F}_{\rm cent} = \frac{m v^2}{r} \hat{\bf r} \end{equation*}$

For the orbit to remain circular the net radial force on the mass must be zero at $r=R$ . That is,

(3) $\begin{equation*} {\bf F}_{\rm cent} + {\bf F} = 0 \implies \boxed{v=\sqrt{\frac{k}{m}} R} \implies \text{option (B) is correct.} \end{equation*}$

The angular momentum $L$ for a circular orbit takes on the simple form $L = {\bf r} \times {\bf p} = mvr$ since ${\bf r}$ and ${\bf p}$ are perpendicular to one another. Substituting the speed calculated above,

(4) $\begin{equation*} \boxed{L=\sqrt{m k} R^{2}} \implies \text{option (C) is correct.} \end{equation*}$

Advanced tidbit: There is a theorem in classical mechanics, called Bertrand’s theorem, which states that the only central potentials for which all bound orbits are closed are the simple harmonic potential $V(r) \propto r^2$ and the graviational/electrostatic potential $V(r) \propto 1/r$ .

That means, for instance a potential $V(r) \propto 1/r^3$ will not, in general, produce a bound orbit that closes in on itself. However, circular orbits are a special case; we can indeed have a circular orbits for $V(r) \propto 1/r^3$ if the centrifugal force cancels the force due to the potential exactly. But if we disturb the circular orbit slightly, the new path will not come back to the same point in space after one period of revolution.

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