Notices
 

[NOTES/CM-05006] Effective Potential for Spherically Symmetric Problems

For page specific messages
For page author info

Category: 

Using angular momentum conservation it is shown that orbits for a spherically symmetric potential lie in a plane; This makes it possible to work in plane polar coordinates. The equation for radial motion becomes similar to that in one dimension with potential replaced by an effective potential. An expression for the effective potential is obtained.


Angular momentum conservation
Lagrangian for a body moving in spherically symmetric potential is given by
\begin{equation}\label{EQ05}{
\mathcal L} = \frac{1}{2} \mu \dot{\vec{r}}^{\,2} - V(r)
\end{equation}
where we have used the notation \(r=|\vec{x}|\). The Lagrangian is invariant under rotations about any axis and in particular about the coordinate axes. This gives us conservation of angular momentum. Thus we have
\begin{equation}\label{EQ07}
\vec{L} = \mu \vec{x} \times \vec{v} = \text{constant of motion}
\end{equation}

Orbits lie in a plane
Since $\vec{L} = \mu\vec{x} \times \vec{v}$ is a constant of motion the magnitude as the direction of $\vec{L}$ does not change with time. Also $\vec{r}$ and $\vec{v}$ always perpendicular to $\vec{L}$ which points in a fixed direction. Hence $\vec{r}$ and $\vec{v}$ remain in the plane perpendicular to $\vec{L}$. Therefore for a particle in a spherically symmetric potential, the motion is confined to a plane.

If $\vec{L}$ is zero, then $\vec{r}\times\vec{v} = 0 $ and $\vec{r}$ will always be parallel to $\vec{v}$ and the particle moves in a straight line. 

Using Plane Polar coordinates
Since the potential depends only on \(r\), we work with plane polar coordinates. We start with Lagrangian for a particle in two dimensions in plane polar coordinates

\begin{equation}\label{EQ08}
\mathcal  L= \frac{1}{2} \mu \dot{\vec{r}}^{\,2} + \frac{1}{2} \mu r^{\,2}
\dot{\phi}^{2} -
V(r).
\end{equation}

\(\phi\) is a cyclic coordinate
Since $\dot{\phi}$ is a cyclic coordinate we have
\begin{equation}\label{EQ10} \frac{\partial {\mathcal L} }{\partial \dot{\phi}} = \mu r^{2}\dot{\phi} = \text{constant, say} L . \end{equation} $\mu r^{2}\dot{\phi}$ is in fact seen to be equal to the magnitude of angular momentum.

Energy conservation
The expression for energy  given by
\begin{equation}\label{EQ09}
E = \frac{1}{2}\mu \dot{r}^{2} + \frac{1}{2} \mu r^{2} \dot{\phi}^{2} +V(r).
\end{equation}
The energy is conserved because the Lagrangian \eqref{EQ08} is independent of time.


The Effective potential
The angular velocity, \(\dot{\phi}\), can be eliminated using
\begin{equation}\label{EQ10A} \dot{\phi} = \frac{L}{2\mu r^2} \end{equation}
and the total energy can be written in terms of \(r\) and \(\dot{r}\) only.
%
Making use of \eqref{EQ09} and \eqref{EQ10A} we get,
\begin{equation}\label{EQ11}
E = \frac{1}{2} \mu \dot{r}^{2} + \frac{ L ^{2}}{2\mu r^{2}} + V(r) =
\frac{1}{2} \mu \dot{r}^{2} + V_\text{eff}(r)
\end{equation}
%
where we have introduced the notation
\begin{equation}\label{EQ12}
\boxed{V_\text{eff}(r) = V(r) + \frac{L^{2}}{2\mu r^{2}}}.
\end{equation}
The radial motion is like motion of a particle in one dimension in effective potential \(V_\text{eff}(r)\). Solution to this problem can be reduced to a quadrature using energy conservation.

Exclude node summary : 

n
700
0
 
X