Electron energization in reconnection: Eulerian vs Lagrangian perspectives

Author:

TenBarge Jason M.1ORCID,Juno James2ORCID,Howes Gregory G.3ORCID

Affiliation:

1. Department of Astrophysical Sciences, Princeton University 1 , Princeton, New Jersey 08544, USA

2. Princeton Plasma Physics Laboratory 2 , Princeton, New Jersey 08540, USA

3. Department of Physics and Astronomy, University of Iowa 3 , Iowa City, Iowa 54224, USA

Abstract

Particle energization due to magnetic reconnection is an important unsolved problem for myriad space and astrophysical plasmas. Electron energization in magnetic reconnection has traditionally been examined from a particle, or Lagrangian, perspective using particle-in-cell (PIC) simulations. Guiding-center analyses of ensembles of PIC particles have suggested that Fermi (curvature drift) acceleration and direct acceleration via the reconnection electric field are the primary electron energization mechanisms. However, both PIC guiding-center ensemble analyses and spacecraft observations are performed in an Eulerian perspective. For this work, we employ the continuum Vlasov–Maxwell solver within the Gkeyll simulation framework to reexamine electron energization from a kinetic continuum, Eulerian, perspective. We separately examine the contribution of each drift energization component to determine the dominant electron energization mechanisms in a moderate guide-field Gkeyll reconnection simulation. In the Eulerian perspective, we find that the diamagnetic and agyrotropic drifts are the primary electron energization mechanisms away from the reconnection x-point, where direct acceleration dominates. We compare the Eulerian (Vlasov Gkeyll) results with the wisdom gained from Lagrangian (PIC) analyses.

Funder

National Science Foundation

U.S. Department of Energy

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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