The Force Balance of Electrons During Kinetic Anti-parallel Magnetic Reconnection
J. Egedal, H. Gurram, S. Greess, W. Daughton, and A. L\^e

TL;DR
This study uses advanced kinetic simulations at realistic mass ratios to analyze electron force balance during magnetic reconnection, revealing how electron pressure anisotropy influences the reconnection process and electric field dynamics.
Contribution
It provides new insights into electron force balance and pressure anisotropy effects at realistic mass ratios in magnetic reconnection.
Findings
Electron pressure anisotropy develops upstream of the EDR.
Pressure tensor gradients cancel in the reconnection electric field balance.
Electron frozen-in law is broken by pressure tensor gradients.
Abstract
Fully kinetic simulations are applied to the study of 2D anti-parallel reconnection, elucidating the dynamics by which the electron fluid maintains force balance within both the electron diffusion region (EDR) and the ion diffusion region (IDR). Inside the IDR, magnetic field-aligned electron pressure anisotropy ( develops upstream of the EDR. Compared to previous investigations, the use of modern computer facilities allows for simulations at the natural proton to electron mass ratio . In this high--limit the electron dynamics changes qualitatively, as the electron inflow to the EDR is enhanced and mainly driven by the anisotropic pressure. Using a coordinate system with the -direction aligned with the reconnecting magnetic field and the -direction aligned with the central current layer, it is well-known that for the much…
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Taxonomy
TopicsIonosphere and magnetosphere dynamics · Solar and Space Plasma Dynamics · Magnetic confinement fusion research
