Noether's theorem gives rise to quantities that are conserved over time. But does it also give rise to quantities that are conserved over space?
Answer
In basic Lagrangian mechanics (of the sort that is covered in a sophomore-level classical mechanics class), no it doesn't. The reason is that time plays a special role in the basic Lagrangian theory: it's the only independent parameter, which everything else is expressed as a function of. This is related to the fact that the action is the integral of the Lagrangian over time, not space, and that in turn means that the "classical" version of Noether's theorem only works for conservation in time.
However, when you generalize to field theory, the situation changes: in field theory, both the time and space coordinates are considered to be independent parameters, so that everything else is expressed as a function of both time and space. In particular, instead of the classical Lagrangian, you have a Lagrangian density $\mathcal{L}$, which lets you express the action as a spacetime integral,
$$S = \int \mathcal{L}\mathrm{d}^4x$$
So the field theory version of Noether's theorem doesn't assign any special status to time. Instead of temporal conservation laws ($\frac{\mathrm{d}Q}{\mathrm{d}t} = 0$), it gives you spacetime conservation laws of the form
$$\frac{\partial j^\mu}{\partial x^\mu} = 0$$
You can turn this into a temporal conservation law by integrating the current $j^\mu$ over a spacelike volume (i.e. all of space at a single moment in time):
$$Q = \int_{t=\text{const}} g_{\mu\nu} j^\mu\mathrm{d}x^\nu\quad\to\quad\frac{\mathrm{d}Q}{\mathrm{d}t} = 0$$
but you can just as well turn it into a spatial conservation law by integrating over a spatiotemporal volume:
$$Q = \int_{x=\text{const}} g_{\mu\nu} j^\mu\mathrm{d}x^\nu\quad\to\quad\frac{\mathrm{d}Q}{\mathrm{d}x} = 0$$
So in this way, yes it is possible to create a spatial conservation law using Noether's theorem.
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