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Effects of multiscale phase-mixing and interior conductance in the lunar-like pickup ion plasma wake. First results from 3-D hybrid kinetic modeling

机译:月球状拾取离子等离子体尾流中多尺度相混合和内部电导的影响。 3-D混合动力学建模的初步结果

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The study of multiscale pickup ion phase-mixing in the lunar plasma wake with a hybrid model is the main subject of our investigation in this paper. Photoionization and charge exchange of protons with the lunar exosphere are the ionization processes included in our model. The computational model includes the self-consistent dynamics of the light (H+orH2+andHe+), and heavy (Na+) pickup ions. The electrons are considered as a fluid. The lunar interior is considered as a weakly conducting body. In this paper we considered for the first time the cumulative effect of heavy neutrals in the lunar exosphere (e.g., Al, Ar), an effect which was simulated with one species ofNa+but with a tenfold increase in total production rates. We find that various species produce various types of plasma tail in the lunar plasma wake. Specifically,Na+andHe+pickup ions form a cycloid-like tail, whereas theH+orH2+pickup ions form a tail with a high density core and saw-like periodic structures in the flank region. The length of these structures varies from1.5RMto3.3RMdepending on the value of gyroradius forH+orH2+pickup ions. The light pickup ions produce more symmetrical jump in the density and magnetic field at the Mach cone which is mainly controlled by the conductivity of the interior, an effect previously unappreciated. Although other pickup ion species had little effect on the nature of the interaction of the Moon with the solar wind, the global structure of the lunar tail in these simulations appeared quite different when theH2+production rate was high.
机译:本文采用混合模型研究月球等离子尾流中的多尺度拾取离子相混合。质子与月球外层的光电离和电荷交换是我们模型中包括的电离过程。计算模型包括轻(H +或H2 +和He +)和重(Na +)吸收离子的自洽动力学。电子被认为是流体。月球内部被认为是弱导电体。在本文中,我们首次考虑了月球大气层中重中性物质(例如Al,Ar)的累积效应,这种效应是用一种Na +进行模拟的,但总生产率却提高了十倍。我们发现,各种物种在月球血浆尾流中产生各种类型的血浆尾巴。具体而言,Na +和He +拾取离子形成一个摆线样的尾巴,而H +或H 2 +拾取离子形成一个高密度的尾巴,并在侧面区域形成锯齿状的周期性结构。这些结构的长度从1.5RM到3.3RM不等,具体取决于H +或H 2 +吸取离子的陀螺半径值。光拾取离子在马赫锥处的密度和磁场中产生更对称的跳跃,这主要是由内部的电导率控制的,这种作用是以前无法理解的。尽管其他拾取离子物种对月球与太阳风相互作用的性质影响不大,但在这些模拟中,当H2 +产生率较高时,月尾的整体结构似乎有很大不同。

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