In situ detection of the electron diffusion region of collisionless magnetic reconnection at the high-latitude magnetopause

Magnetic reconnection is the most fundamental energy-transfer mechanism in the universe that converts magnetic energy into heat and kinetic energy of charged particles. For reconnection to occur, the frozen-in condition must break down in a localized region, commonly called the ‘diffusion region’. I...

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Main Authors: Qiu-Gang Zong, Hui Zhang
Format: Article
Language:English
Published: Science Press 2018-05-01
Series:Earth and Planetary Physics
Subjects:
Online Access:http://www.eppcgs.org/article/doi/10.26464/epp2018022?pageType=en
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author Qiu-Gang Zong
Hui Zhang
author_facet Qiu-Gang Zong
Hui Zhang
author_sort Qiu-Gang Zong
collection DOAJ
description Magnetic reconnection is the most fundamental energy-transfer mechanism in the universe that converts magnetic energy into heat and kinetic energy of charged particles. For reconnection to occur, the frozen-in condition must break down in a localized region, commonly called the ‘diffusion region’. In Earth’s magnetosphere, ion diffusion regions have already been observed, while electron diffusion regions have not been detected due to their small scales (of the order of a few km) (Paschmann, 2008). In this paper we report, for the first time, in situ observations of an active electron diffusion region by the four Cluster spacecraft at the Earth’s high-latitude magnetopause. The electron diffusion region is characterized by nongyrotropic electron distribution, strong field-aligned currents carried by electrons and bi-directional super-Alfvénic electron jets. Also observed were multiple micro-scale flux ropes, with a scale size of about 5 c/ωpe (12 km, with c/ωpe the electron inertial length), that are crucial for electron acceleration in the guide-field reconnection process (Drake et al., 2006a). The data demonstrate the existence of the electron diffusion region in collisionless guide-field reconnection at the magnetopause.
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spelling doaj.art-2c2f1e35ea144e78b86ee3dde37d0edb2022-12-22T00:43:23ZengScience PressEarth and Planetary Physics2096-39552018-05-012323123710.26464/epp2018022wangyongfuIn situ detection of the electron diffusion region of collisionless magnetic reconnection at the high-latitude magnetopauseQiu-Gang Zong0Hui Zhang1Institute of Space Physics and Applied Technology, Peking University, Beijing 100871, ChinaGeophysical Institute, University of Alaska Fairbanks, Fairbanks, Alaska, USAMagnetic reconnection is the most fundamental energy-transfer mechanism in the universe that converts magnetic energy into heat and kinetic energy of charged particles. For reconnection to occur, the frozen-in condition must break down in a localized region, commonly called the ‘diffusion region’. In Earth’s magnetosphere, ion diffusion regions have already been observed, while electron diffusion regions have not been detected due to their small scales (of the order of a few km) (Paschmann, 2008). In this paper we report, for the first time, in situ observations of an active electron diffusion region by the four Cluster spacecraft at the Earth’s high-latitude magnetopause. The electron diffusion region is characterized by nongyrotropic electron distribution, strong field-aligned currents carried by electrons and bi-directional super-Alfvénic electron jets. Also observed were multiple micro-scale flux ropes, with a scale size of about 5 c/ωpe (12 km, with c/ωpe the electron inertial length), that are crucial for electron acceleration in the guide-field reconnection process (Drake et al., 2006a). The data demonstrate the existence of the electron diffusion region in collisionless guide-field reconnection at the magnetopause.http://www.eppcgs.org/article/doi/10.26464/epp2018022?pageType=enelectron diffusion regionmagnetic reconnectionhigh-latitude magnetopause
spellingShingle Qiu-Gang Zong
Hui Zhang
In situ detection of the electron diffusion region of collisionless magnetic reconnection at the high-latitude magnetopause
Earth and Planetary Physics
electron diffusion region
magnetic reconnection
high-latitude magnetopause
title In situ detection of the electron diffusion region of collisionless magnetic reconnection at the high-latitude magnetopause
title_full In situ detection of the electron diffusion region of collisionless magnetic reconnection at the high-latitude magnetopause
title_fullStr In situ detection of the electron diffusion region of collisionless magnetic reconnection at the high-latitude magnetopause
title_full_unstemmed In situ detection of the electron diffusion region of collisionless magnetic reconnection at the high-latitude magnetopause
title_short In situ detection of the electron diffusion region of collisionless magnetic reconnection at the high-latitude magnetopause
title_sort in situ detection of the electron diffusion region of collisionless magnetic reconnection at the high latitude magnetopause
topic electron diffusion region
magnetic reconnection
high-latitude magnetopause
url http://www.eppcgs.org/article/doi/10.26464/epp2018022?pageType=en
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AT huizhang insitudetectionoftheelectrondiffusionregionofcollisionlessmagneticreconnectionatthehighlatitudemagnetopause