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On the deviation from Maxwellian of the ion velocity distribution functions in the turbulent magnetosheath

机译:湍流磁晶岩中离子速度分布函数的偏差

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摘要

The deviation from thermodynamic equilibrium of the ion velocity distribution functions (VDFs), as measured by the Magnetospheric Multiscale (MMS) mission in the Earth's turbulent magnetosheath, is quantitatively investigated. Making use of the unprecedented high-resolution MMS ion data, and together with Vlasov-Maxwell simulations, this analysis aims at investigating the relationship between deviation from Maxwellian equilibrium and typical plasma parameters. Correlations of the non-Maxwellian features with plasma quantities such as electric fields, ion temperature, current density and ion vorticity are found to be similar in magnetosheath data and numerical experiments, with a poor correlation between distortions of ion VDFs and current density, evidence that questions the occurrence of VDF departure from Maxwellian at the current density peaks. Moreover, strong correlation has been observed with the magnitude of the electric field in the turbulent magnetosheath, while a certain degree of correlation has been found in the numerical simulations and during a magnetopause crossing by MMS. This work could help shed light on the influence of electrostatic waves on the distortion of the ion VDFs in space turbulent plasmas.
机译:通过地球湍流磁性磁性磁圈中的磁体多尺度(MMS)任务测量的离子速度分布函数(VDF)的热力学平衡的偏差被定量地研究。利用前所未有的高分辨率MMS离子数据,以及与Vlasov-Maxwell模拟一起,该分析旨在调查与Maxwell均衡和典型等离子体参数之间的偏差之间的关系。在磁性的数据和数值实验中发现了具有等离子体量的非最大峰值特征,例如电场,离子温度,电流密度和离子涡度等等离子体量的相关性,在离子VDF的扭曲和电流密度之间的相关性之间的相关性差,证据在目前密度峰值处从Maxwellian出发的VDF出发的问题。此外,通过湍流磁性晶体晶体中的电场的大小,观察到强的相关性,而在数值模拟中发现了一定程度的相关程度,并且在MMS的磁性常规交叉期间发现了一定程度的相关性。这项工作可以帮助揭示静电波对太空湍流等离子体中的离子VDFS变形的影响。

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  • 来源
    《Journal of Plasma Physics》 |2020年第1期|共17页
  • 作者单位

    Univ Calabria Dipartimento Fis Via P Bucci 87036 Arcavacata Di Rende Italy;

    ASI Italian Space Agcy Via Politecn Snc Rome Italy;

    Swedish Inst Space Phys Box 537 SE-75121 Uppsala Sweden;

    Escuela Politec Nacl Dept Fis Av Ladron de Guevara 253 Quito 170517 Ecuador;

    NASA Goddard Space Flight Ctr 8800 Greenbelt Rd Greenbelt MD 20771 USA;

    NASA Goddard Space Flight Ctr 8800 Greenbelt Rd Greenbelt MD 20771 USA;

    NASA Goddard Space Flight Ctr 8800 Greenbelt Rd Greenbelt MD 20771 USA;

    NASA Goddard Space Flight Ctr 8800 Greenbelt Rd Greenbelt MD 20771 USA;

    NASA Goddard Space Flight Ctr 8800 Greenbelt Rd Greenbelt MD 20771 USA;

    NASA Goddard Space Flight Ctr 8800 Greenbelt Rd Greenbelt MD 20771 USA;

    Univ Toulouse CNES UPS Inst Rech Astrophys &

    Planetol CNRS 9 Ave Colonel Roche F-31400 Toulouse France;

    JAXA Tokyo 1828522 Japan;

    Austrian Acad Sci Space Res Inst Schmiedlstr 6 A-8042 Graz Austria;

    Austrian Acad Sci Space Res Inst Schmiedlstr 6 A-8042 Graz Austria;

    Austrian Acad Sci Space Res Inst Schmiedlstr 6 A-8042 Graz Austria;

    Austrian Acad Sci Space Res Inst Schmiedlstr 6 A-8042 Graz Austria;

    Austrian Acad Sci Space Res Inst Schmiedlstr 6 A-8042 Graz Austria;

    Austrian Acad Sci Space Res Inst Schmiedlstr 6 A-8042 Graz Austria;

    Univ Calif Los Angeles Inst Geophys &

    Planetary Phys 603 CE Young Dr East Los Angeles CA 90095 USA;

    Univ Calif Los Angeles Inst Geophys &

    Planetary Phys 603 CE Young Dr East Los Angeles CA 90095 USA;

    Univ Paris Sud Sorbonne Univ Ecole Polytech Observ Paris Lab Phys Plasmas CNRS Route Saclay F-91128 Palaiseaux France;

    Swedish Inst Space Phys Box 537 SE-75121 Uppsala Sweden;

    Univ Calabria Dipartimento Fis Via P Bucci 87036 Arcavacata Di Rende Italy;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 等离子体物理学;
  • 关键词

    astrophysical plasmas; plasma waves;

    机译:天体物理等离子体;等离子波;

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