The electron diffusion region dominated by electromagnetic turbulence in the reconnection current layer

Author:

Fujimoto Keizo12ORCID,Sydora Richard D.3ORCID

Affiliation:

1. School of Space and Environment, Beihang University 1 , Beijing 100191, China

2. Key Laboratory of Space Environment Monitoring and Information Processing, Ministry of Industry and Information Technology 2 , Beijing 100191, China

3. Department of Physics, University of Alberta 3 , Edmonton T6G 2E1, Canada

Abstract

Most of the plasma fluid equations have employed the electrical resistivity to generate the magnetic dissipation required for magnetic reconnection to occur in collisionless plasma. However, there has been no clear evidence that such a model is indeed appropriate in the reconnection diffusion region in terms of the kinetic physics. The present study demonstrates that, using a large-scale 3D kinetic simulation and analytical analysis, the spatial distribution of the non-ideal electric field is consistent with the dissipation due to the viscosity rather than the resistivity, when electromagnetic (EM) turbulence is dominant in the electron diffusion region (EDR). The effective viscosity is caused by the EM turbulence that is driven by the flow shear instabilities leading to the electron momentum transport across the EDR. The result suggests a fundamental modification of the fluid equations using the resistivity in the Ohm's law. In contrast, for the 2D current sheet without significant turbulence activity, the non-ideal field profile does not obey the simple form based on the viscosity, so that further investigation is needed for a better description.

Funder

National Natural Science Foundation of China

Natural Sciences and Engineering Research Council of Canada

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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3. Effective viscosity, resistivity, and Reynolds number in weakly collisional plasma turbulence;Monthly Notices of the Royal Astronomical Society;2024-02-02

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