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Electron Energization and Thermal to Non-Thermal Energy Partition During Earth's Magnetotail Reconnection

Authors :
M Oka
T D Phan
M Oieroset
D L Turner
J F Drake
X Li
S A Fuselier
D J Gershman
B L Giles
R E Ergun
R B Torbert
H Y Wei
R J Strangeway
C T Russell
J L Burch
Source :
Physics of Plasmas. 29(5)
Publication Year :
2022
Publisher :
United States: NASA Center for Aerospace Information (CASI), 2022.

Abstract

Electrons in earth's magnetotail are energized significantly both in the form of heating and in the form of acceleration to non-thermal energies. While magnetic reconnection is considered to play an important role in this energization, it still remains unclear how electrons are energized and how energy is partitioned between thermal and non-thermal components. Here, we show, based on in situ observations by NASA's magnetospheric multiscale mission combined with multi-component spectral fitting methods, that the average electron energy ε¯(or equivalently temperature) is substantially higher when the locally averaged electric field magnitude |𝐸| is also higher. While this result is consistent with the classification of “plasma-sheet” and “tail-lobe” reconnection during which reconnection is considered to occur on closed and open magnetic field lines, respectively, it further suggests that a stochastic Fermi acceleration in 3D, reconnection-driven turbulence is essential for the production and confinement of energetic electrons in the reconnection region. The puzzle is that the non-thermal power-law component can be quite small even when the electric field is large and the bulk population is significantly heated. The fraction of non-thermal electron energies varies from sample to sample between ∼20% and ∼60%, regardless of the electric field magnitude. Interestingly, these values of non-thermal fractions are similar to those obtained for the above-the-looptop hard x-ray coronal sources for solar flares.

Subjects

Subjects :
Plasma Physics

Details

Language :
English
ISSN :
10897674 and 1070664X
Volume :
29
Issue :
5
Database :
NASA Technical Reports
Journal :
Physics of Plasmas
Notes :
943396.04.08.03.02, , NNH10CC04C, , NNG04EB99C, , 1531256
Publication Type :
Report
Accession number :
edsnas.20220016239
Document Type :
Report
Full Text :
https://doi.org/10.1063/5.0085647