English

Variational methods for the kinetic Fokker-Planck equation

Analysis of PDEs 2024-07-24 v2

Abstract

We develop a functional analytic approach to the study of the Kramers and kinetic Fokker-Planck equations which parallels the classical H1H^1 theory of uniformly elliptic equations. In particular, we identify a function space analogous to H1H^1 and develop a well-posedness theory for weak solutions in this space. In the case of a conservative force, we identify the weak solution as the minimizer of a uniformly convex functional. We prove new functional inequalities of Poincar\'e and H\"ormander type and combine them with basic energy estimates (analogous to the Caccioppoli inequality) in an iteration procedure to obtain the CC^\infty regularity of weak solutions. We also use the Poincar\'e-type inequality to give an elementary proof of the exponential convergence to equilibrium for solutions of the kinetic Fokker-Planck equation which mirrors the classic dissipative estimate for the heat equation. Finally, we prove enhanced dissipation in a weakly collisional limit.

Keywords

Cite

@article{arxiv.1902.04037,
  title  = {Variational methods for the kinetic Fokker-Planck equation},
  author = {D. Albritton and S. Armstrong and J. -C. Mourrat and M. Novack},
  journal= {arXiv preprint arXiv:1902.04037},
  year   = {2024}
}

Comments

This is a major revision: two authors have been added, some mistakes from the previous version have been addressed, and some new results have been included (Hormander inequality now has an optimal exponent, enhanced dissipation result has been added). 53 pages

R2 v1 2026-06-23T07:37:56.316Z