Stacked Electron Diffusion Regions and Electron Kelvin–Helmholtz Vortices within the Ion Diffusion Region of Collisionless Magnetic Reconnection

Zhong, Z. H. and Zhou, M. and Liu, Yi-Hsin and Deng, X. H. and Tang, R. X. and Graham, D. B. and Song, L. J. and Man, H. Y. and Pang, Y. and Khotyaintsev, Yu. V. (2022) Stacked Electron Diffusion Regions and Electron Kelvin–Helmholtz Vortices within the Ion Diffusion Region of Collisionless Magnetic Reconnection. The Astrophysical Journal Letters, 926 (2). L27. ISSN 2041-8205

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Abstract

The structure of the electron diffusion region (EDR) is essential for determining how fast the magnetic energy converts to plasma energy during magnetic reconnection. Conventional knowledge of the diffusion region assumes that the EDR is a single layer embedded within the ion diffusion region (IDR). This paper reports the first observation of two EDRs that stack in parallel within an IDR by the Magnetospheric Multiscale mission. The oblique tearing modes can result in these stacked EDRs. Intense electron flow shear in the vicinity of two EDRs induced electron Kelvin–Helmholtz vortices, which subsequently generated kinetic-scale magnetic peak and holes, which may effectively trap electrons. Our analyses show that both the oblique tearing instability and electron Kelvin–Helmholtz instability are important in three-dimensional reconnection since they can control the electron dynamics and structure of the diffusion region through cross-scale coupling.

Item Type: Article
Subjects: Archive Digital > Physics and Astronomy
Depositing User: Unnamed user with email support@archivedigit.com
Date Deposited: 03 May 2023 07:12
Last Modified: 06 Feb 2024 04:34
URI: http://eprints.ditdo.in/id/eprint/692

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