Dissipation measures in weakly-collisional plasmas
O. Pezzi, H. Liang, J.L. Juno, P.A. Cassak, C.L. Vasconez, L., Sorriso-Valvo, D. Perrone, S. Servidio, V. Roytershteyn, J.M. TenBarge, and, W.H. Matthaeus

TL;DR
This study compares various measures of energy dissipation in weakly-collisional plasmas using kinetic simulations of magnetic reconnection and turbulence, revealing local correlations with magnetic stresses and the impact of collisions.
Contribution
It systematically evaluates and compares energy-based and distribution function-based dissipation measures across different simulation codes and plasma phenomena.
Findings
Dissipation measures agree well between PIC and continuum simulations.
Dissipation occurs near regions of intense magnetic stresses.
Distribution function measures show broader regions of influence.
Abstract
The physical foundations of the dissipation of energy and the associated heating in weakly collisional plasmas are poorly understood. Here, we compare and contrast several measures that have been used to characterize energy dissipation and kinetic-scale conversion in plasmas by means of a suite of kinetic numerical simulations describing both magnetic reconnection and decaying plasma turbulence. We adopt three different numerical codes that can also include interparticle collisions: the fully kinetic particle-in-cell VPIC, the fully kinetic continuum Gkeyll, and the Eulerian Hybrid Vlasov-Maxwell (HVM) code. We differentiate between (i) four energy-based parameters, whose definition is related to energy transfer in a fluid description of a plasma, and (ii) four distribution function-based parameters, requiring knowledge of the particle velocity distribution function. There is an overall…
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