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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >High-Resolution Measurements of the Cross-Shock Potential, Ion Reflection, and Electron Heating at an Interplanetary Shock by MMS
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High-Resolution Measurements of the Cross-Shock Potential, Ion Reflection, and Electron Heating at an Interplanetary Shock by MMS

机译:MMS的跨冲击电位,离子反射和电子加热的高分辨率测量值

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摘要

The Magnetospheric Multiscale (MMS) spacecraft obtained unprecedented high-time resolution multipoint particle and field measurements of an interplanetary shock event on 8 January 2018. The spacecraft encountered the supercritical forward shock of a forward/reverse shock pair in the pristine solar wind upstream of the bow shock near the subsolar point as they neared apogee at ~25 RE. The high-time resolution measurements from the four spacecraft, separated by only ~20 km, allowed direct measurement of particle distributions revealing evidence of electron heating and near specularly reflected ions. The cross-shock potential is calculated directly from 3-D electric field measurements. This is the first reported direct high temporal resolution (<1 s) observation at an interplanetary shock of near specularly reflected ions. Calculation of the cross-shock potential yields a potential jump significant enough to reflect at least some of the protons from the incident solar wind beam. The cross-shock potential calculated here is consistent with previous estimations based on particle measurements and numerical/analytical simulations. The ambipolar contribution to the cross-shock potential calculated from the four-spacecraft divergence of the electron pressure tensor is somewhat higher than that inferred form the Liouville-mapped electron energy gain across the shock. Furthermore, the high-time-resolution 3-D electric field measurements reported here reveal small-scale nonlinear structures embedded in the shock layer that contribute to the nonmonotonic shock transition.
机译:磁体多尺度(MMS)航天器在2018年1月8日获得了前所未有的高速分辨率的多点粒子和田间测量的行星际冲击事件。航天器遇到了前向太阳风的前进/逆时间冲击对的超临界前锋冲击当他们靠近Apogee时,在〜25 reo redee附近靠近子放大点震荡。四个航天器的高速分辨率测量仅分开〜20公里,允许直接测量粒子分布,揭示电子加热的证据和近镜面反射离子。横击电位直接从3-D电场测量计算。这是第一次报道的近镜面反射离子的行星际冲击的直接高颞率(<1 s)观察。横击潜力的计算产生的潜在跳跃足以反射来自入射太阳能束的至少一些质子。这里计算的交叉冲击电位与基于粒子测量和数值/分析模拟的先前估计一致。从电子压力张量的四个航天器发散计算的横击电位的横击电位的贡献略高于推断出在休克穿过脉冲的Liouville映射的电子能源增益。此外,这里报道的高级分辨率3-D电场测量显示嵌入在有助于非单调冲击过渡的冲击层中的小规模非线性结构。

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