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Multispacecraft analysis of dipolarization fronts and associated whistler wave emissions using MMS data

  • H. Breuillard
  • , O. Le Contel
  • , A. Retino
  • , A. Chasapis
  • , T. Chust
  • , L. Mirioni
  • , D. B. Graham
  • , F. D. Wilder
  • , I. Cohen
  • , A. Vaivads
  • , Yu V. Khotyaintsev
  • , P. A. Lindqvist
  • , G. T. Marklund
  • , J. L. Burch
  • , R. B. Torbert
  • , R. E. Ergun
  • , K. A. Goodrich
  • , J. Macri
  • , J. Needell
  • , M. Chutter
  • D. Rau, I. Dors, C. T. Russell, W. Magnes, R. J. Strangeway, K. R. Bromund, F. Plaschke, D. Fischer, H. K. Leinweber, B. J. Anderson, G. Le, J. A. Slavin, E. L. Kepko, W. Baumjohann, B. Mauk, S. A. Fuselier, R. Nakamura
  • LPP
  • University of Delaware
  • Swedish Institute of Space Physics
  • University of Colorado Boulder
  • Johns Hopkins University Applied Physics Laboratory
  • KTH Royal Institute of Technology
  • Southwest Research Institute
  • University of New Hampshire
  • Institute of Geophysics and Planetary Physics, University of California
  • Space Research Institute
  • NASA Goddard Space Flight Center
  • University of Michigan, Ann Arbor
  • University of Texas

Research output: Contribution to journalArticlepeer-review

59 Citations (Scopus)

Abstract

Dipolarization fronts (DFs), embedded in bursty bulk flows, play a crucial role in Earth's plasma sheet dynamics because the energy input from the solar wind is partly dissipated in their vicinity. This dissipation is in the form of strong low-frequency waves that can heat and accelerate energetic electrons up to the high-latitude plasma sheet. However, the dynamics of DF propagation and associated low-frequency waves in the magnetotail are still under debate due to instrumental limitations and spacecraft separation distances. In May 2015 the Magnetospheric Multiscale (MMS) mission was in a string-of-pearls configuration with an average intersatellite distance of 160 km, which allows us to study in detail the microphysics of DFs. Thus, in this letter we employ MMS data to investigate the properties of dipolarization fronts propagating earthward and associated whistler mode wave emissions. We show that the spatial dynamics of DFs are below the ion gyroradius scale in this region (∼500 km), which can modify the dynamics of ions in the vicinity of the DF (e.g., making their motion nonadiabatic). We also show that whistler wave dynamics have a temporal scale of the order of the ion gyroperiod (a few seconds), indicating that the perpendicular temperature anisotropy can vary on such time scales.

Original languageEnglish
Pages (from-to)7279-7286
Number of pages8
JournalGeophysical Research Letters
Volume43
Issue number14
DOIs
Publication statusPublished - 28 Jul 2016
Externally publishedYes

Keywords

  • Earth magnetotail
  • dipolarization fronts

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