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Solar Wind—Magnetosphere Coupling During Radial Interplanetary Magnetic Field Conditions: Simultaneous Multi-Point Observations

  • S. Toledo-Redondo
  • , K. J. Hwang
  • , C. P. Escoubet
  • , B. Lavraud
  • , J. Fornieles
  • , N. Aunai
  • , R. C. Fear
  • , J. Dargent
  • , H. S. Fu
  • , S. A. Fuselier
  • , K. J. Genestreti
  • , Yu V. Khotyaintsev
  • , W. Y. Li
  • , C. Norgren
  • , T. D. Phan
  • Universidad de Murcia
  • IRAP/CNRS
  • Southwest Research Institute
  • ESTEC - European Space Research and Technology Centre
  • Univ. Bordeaux
  • University of Granada
  • LPP
  • University of Southampton
  • Ruhr-University Bochum
  • Beihang University
  • University of Texas
  • Southwest Research Institute
  • Swedish Institute of Space Physics
  • National Space Science Center
  • University of Bergen
  • University of California, Berkeley

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

In-situ spacecraft missions are powerful assets to study processes that occur in space plasmas. One of their main limitations, however, is extrapolating such local measurements to the global scales of the system. To overcome this problem at least partially, multi-point measurements can be used. There are several multi-spacecraft missions currently operating in the Earth's magnetosphere, and the simultaneous use of the data collected by them provides new insights into the large-scale properties and evolution of magnetospheric plasma processes. In this work, we focus on studying the Earth's magnetopause (MP) using a conjunction between the Magnetospheric Multiscale and Cluster fleets, when both missions skimmed the MP for several hours at distant locations during radial interplanetary magnetic field (IMF) conditions. The observed MP positions as a function of the evolving solar wind conditions are compared to model predictions of the MP. We observe an inflation of the magnetosphere (∼0.7 RE), consistent with magnetosheath pressure decrease during radial IMF conditions, which is less pronounced on the flank ((Formula presented.) 0.2 RE). There is observational evidence of magnetic reconnection in the subsolar region for the whole encounter, and in the dusk flank for the last portion of the encounter, suggesting that reconnection was extending more than 15 RE. However, reconnection jets were not always observed, suggesting that reconnection was patchy, intermittent or both. Shear flows reduce the reconnection rate up to ∼30% in the dusk flank according to predictions, and the plasma β enhancement in the magnetosheath during radial IMF favors reconnection suppression by the diamagnetic drift.

langue originaleAnglais
Numéro d'articlee2021JA029506
journalJournal of Geophysical Research: Space Physics
Volume126
Numéro de publication11
Les DOIs
étatPublié - 1 nov. 2021
Modification externeOui

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