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Strong Reconnection Electric Fields in Shock-Driven TurbulenceTurbulent magnetic reconnection in a quasi-parallel shock under parameters relevant to the Earth's bow shock is investigated by means of a two-dimensional particle-in-cell simulation. The addressed aspects include the reconnection electric field, the reconnection rate, and the electron and the ion outflow speeds. In the shock transition region, many current sheets are generated in shock-driven turbulence, and electron-only reconnection and reconnection where both ions and electrons are involved can occur in those current sheets. The electron outflow speed in electron-only reconnection shows a positive correlation with the theoretical speed, which is close to the local electron Alfvén speed, and a strong convection electric field is generated by the large electron outflow. As a result, the reconnection electric field becomes much larger than those in the standard magnetopause or magnetotail reconnection. In shock-driven reconnection that involves ion dynamics, both electron outflows and ion outflows can reach of the order of 10 times the Alfvén speed in the X-line rest frame, leading to a reconnection electric field the same order as that in electron-only reconnection. An electron-only reconnection event observed by the magnetospheric multiscale mission downstream of a quasi-parallel shock is qualitatively similar to those in the simulation and shows that the outflow speed reaches approximately half the local electron Alfvén speed, supporting the simulation prediction.
Document ID
20230001159
Acquisition Source
Goddard Space Flight Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
N. Bessho ORCID
(University of Maryland, College Park College Park, Maryland, United States)
L.-J. Chen
(Goddard Space Flight Center Greenbelt, Maryland, United States)
J. E. Stawarz ORCID
(Imperial College London London, Westminster, United Kingdom)
S. Wang ORCID
(University of Maryland, College Park College Park, Maryland, United States)
M. Hesse
(Ames Research Center Mountain View, California, United States)
L. B. Wilson III ORCID
(Goddard Space Flight Center Greenbelt, Maryland, United States)
J. Ng ORCID
(University of Maryland, College Park College Park, Maryland, United States)
Date Acquired
January 24, 2023
Publication Date
April 8, 2022
Publication Information
Publication: Physics of Plasmas
Publisher: American Institute of Physics
Volume: 29
Issue: 4
Issue Publication Date: April 8, 2022
ISSN: 1070-664X
e-ISSN: 1089-7674
Subject Category
Physics of Elementary Particles and Fields
Funding Number(s)
CONTRACT_GRANT: 80NSSC20K1312
CONTRACT_GRANT: DESC0016278
CONTRACT_GRANT: 80NSSC21M0180
CONTRACT_GRANT: URF\R1\201286
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
Keywords
magnetic reconnection
spacecrafts
particle-in-cell method
turbulence simulations
magnetospheric plasmas
electric fields
shock waves
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