Non-thermal particle acceleration from maximum entropy in collisionless plasmas

Author:

Zhdankin VladimirORCID

Abstract

Dissipative processes cause collisionless plasmas in many systems to develop non-thermal particle distributions with broad power-law tails. The prevalence of power-law energy distributions in space/astrophysical observations and kinetic simulations of systems with a variety of acceleration and trapping (or escape) mechanisms poses a deep mystery. We consider the possibility that such distributions can be modelled from maximum-entropy principles, when accounting for generalizations beyond the Boltzmann–Gibbs entropy. Using a dimensional representation of entropy (related to the Renyi and Tsallis entropies), we derive generalized maximum-entropy distributions with a power-law tail determined by the characteristic energy scale at which irreversible dissipation occurs. By assuming that particles are typically energized by an amount comparable to the free energy (per particle) before equilibrating, we derive a formula for the power-law index as a function of plasma parameters for magnetic dissipation in systems with sufficiently complex topologies. The model reproduces several results from kinetic simulations of relativistic turbulence and magnetic reconnection.

Publisher

Cambridge University Press (CUP)

Subject

Condensed Matter Physics

Cited by 6 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Particle acceleration in self-driven turbulent reconnection;Journal of High Energy Astrophysics;2023-11

2. Non-thermal particle acceleration and power-law tails via relaxation to universal Lynden-Bell equilibria;Journal of Plasma Physics;2023-10

3. Dimensional measures of generalized entropy;Journal of Physics A: Mathematical and Theoretical;2023-08-30

4. Loading a relativistic Kappa distribution in particle simulations;Physics of Plasmas;2022-11

5. MHD turbulence: a biased review;Journal of Plasma Physics;2022-10

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