Electron Signatures of Reconnection in a Global eVlasiator Simulation.

electric field electron distribution function kinetic simulation magnetosphere reconnection vlasov equation

Journal

Geophysical research letters
ISSN: 0094-8276
Titre abrégé: Geophys Res Lett
Pays: United States
ID NLM: 9882887

Informations de publication

Date de publication:
28 Jul 2022
Historique:
received: 15 02 2022
revised: 13 05 2022
accepted: 02 06 2022
entrez: 17 10 2022
pubmed: 18 10 2022
medline: 18 10 2022
Statut: ppublish

Résumé

Geospace plasma simulations have progressed toward more realistic descriptions of the solar wind-magnetosphere interaction from magnetohydrodynamic to hybrid ion-kinetic, such as the state-of-the-art Vlasiator model. Despite computational advances, electron scales have been out of reach in a global setting. eVlasiator, a novel Vlasiator submodule, shows for the first time how electromagnetic fields driven by global hybrid-ion kinetics influence electrons, resulting in kinetic signatures. We analyze simulated electron distributions associated with reconnection sites and compare them with Magnetospheric Multiscale (MMS) spacecraft observations. Comparison with MMS shows that key electron features, such as reconnection inflows, heated outflows, flat-top distributions, and bidirectional streaming, are in remarkable agreement. Thus, we show that many reconnection-related features can be reproduced despite strongly truncated electron physics and an ion-scale spatial resolution. Ion-scale dynamics and ion-driven magnetic fields are shown to be significantly responsible for the environment that produces electron dynamics observed by spacecraft in near-Earth plasmas.

Identifiants

pubmed: 36249284
doi: 10.1029/2022GL098329
pii: GRL64383
pmc: PMC9541212
doi:

Types de publication

Journal Article

Langues

eng

Pagination

e2022GL098329

Informations de copyright

© 2022. The Authors.

Références

Phys Rev Lett. 2020 Jan 31;124(4):045101
pubmed: 32058767
J Geophys Res Space Phys. 2017 Nov;122(11):10891-10909
pubmed: 29399431
Geophys Res Lett. 2016 May 28;43(10):4841-4849
pubmed: 27867235
Nat Commun. 2020 Jan 9;11(1):141
pubmed: 31919351
Phys Rev Lett. 2020 Jul 10;125(2):025103
pubmed: 32701350
Science. 2018 Dec 21;362(6421):1391-1395
pubmed: 30442767
Living Rev Comput Astrophys. 2018;4(1):1
pubmed: 30680308
Geophys Res Lett. 2022 Jan 28;49(2):e2021GL096335
pubmed: 35860603

Auteurs

M Alho (M)

Department of Physics University of Helsinki Helsinki Finland.

M Battarbee (M)

Department of Physics University of Helsinki Helsinki Finland.

Y Pfau-Kempf (Y)

Department of Physics University of Helsinki Helsinki Finland.

Yu V Khotyaintsev (YV)

Swedish Institute of Space Physics Uppsala Sweden.

R Nakamura (R)

Space Research Institute Austrian Academy of Sciences Graz Austria.

G Cozzani (G)

Department of Physics University of Helsinki Helsinki Finland.

U Ganse (U)

Department of Physics University of Helsinki Helsinki Finland.

L Turc (L)

Department of Physics University of Helsinki Helsinki Finland.

A Johlander (A)

Department of Physics University of Helsinki Helsinki Finland.
Swedish Institute of Space Physics Uppsala Sweden.

K Horaites (K)

Department of Physics University of Helsinki Helsinki Finland.

V Tarvus (V)

Department of Physics University of Helsinki Helsinki Finland.

H Zhou (H)

Department of Physics University of Helsinki Helsinki Finland.

M Grandin (M)

Department of Physics University of Helsinki Helsinki Finland.

M Dubart (M)

Department of Physics University of Helsinki Helsinki Finland.

K Papadakis (K)

Department of Physics University of Helsinki Helsinki Finland.

J Suni (J)

Department of Physics University of Helsinki Helsinki Finland.

H George (H)

Department of Physics University of Helsinki Helsinki Finland.

M Bussov (M)

Department of Physics University of Helsinki Helsinki Finland.

M Palmroth (M)

Department of Physics University of Helsinki Helsinki Finland.
Finnish Meteorological Institute Helsinki Finland.

Classifications MeSH