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I'm reading Lieb-Loss's book 'Analysis', chapter 7. The authors refer to the following integral:

$$\tag{1} \lVert \nabla f\rVert_2^2=\int_{\Omega}\lvert \nabla f(x)\rvert^2\, d^nx $$

as the kinetic energy (see pag. 172), without explanation. To what physical system are they referring to? My intuitions says that (1) would be more appropriately called potential energy, as we have discussed here.


(Note: In a later paragraph the authors introduce a magnetic potential $\mathbf{A}$ and the so-called covariant derivative $\nabla+i\mathbf{A}$, remarking that after this introduction the kinetic energy integral must be replaced with

$$\int_{\mathbb{R}^n}\lvert (\nabla + i \mathbf{A})f(x)\rvert^2\, d^n x.$$

This induces me to think that they take as a model some kind of electromagnetic system.)

Thank you for your attention.

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In quantum mechanics, the gradient operator represents momentum (to within a constant factor). That is why they would call the square of the gradient the kinetic energy (momentum squared, to within a constant factor). That is quite general and not confined to any particular system. But yes, the vector potential is added to deal with the electromagnetic field. –  Greg P Apr 10 '12 at 2:13
    
@Greg P, Wouldn't the kinetic energy be proportional to the expectation value of the Laplacian operator? I was thinking of exactly what you have said, but was unsure since the OP has a different expression. –  Vijay Murthy Apr 10 '12 at 8:17
    
@Vijay: integrate by parts, then you see that the expectation value of the (negative) Laplacian operator is precisely the $L^2$ norm of the gradient. –  Willie Wong Apr 10 '12 at 9:30
    
@Willie Wong, Yes I can see that. But that sort of assumes that $f(x)$ or $\nabla f(x)$ vanishes on the boundary. If this is indeed what the OP had in mind, then fine. –  Vijay Murthy Apr 10 '12 at 10:16
    
I don't think this is necessarily quantum mechanical. This term is called kinetic energy in every fluid dynamics book as well. –  MBN Apr 10 '12 at 10:53

1 Answer 1

up vote 3 down vote accepted

As Greg P mentions in a comment, this terminology is inspired by quantum mechanics.

  1. $f(x)$ plays the role of the wave function $\psi(x)=\langle x|\psi\rangle$ in the position space representation.

  2. The conjugate/canonical momentum operator $\hat{\bf p}$ is replaced by $\frac{\hbar}{i}{\bf \nabla}$ in the Schrödinger representation.

  3. The kinetic/mechanical momentum operator $m\hat{\bf v}$ is replaced by $\hat{\bf p}+{\bf A}$ (if we absorb certain constants, such as the charge of the particles, into the definition of the magnetic potential ${\bf A}$.)

  4. The expectation value $\langle\psi| \hat{K}|\psi\rangle$ of the non-relativistic kinetic energy operator $\hat{K}=\frac{m}{2}\hat{\bf v}^2$ is $$\langle\psi| \hat{K}|\psi\rangle ~=~\frac{m}{2} \int d^n x~ |\hat{\bf v}\psi(x)|^2 ~=~\frac{1}{2m} \int d^n x~ |(\hbar{\bf \nabla}-i{\bf A})\psi(x)|^2. $$

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