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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Self-consistent multifluid MHD simulations of Europa's exospheric interaction with Jupiter's magnetosphere
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Self-consistent multifluid MHD simulations of Europa's exospheric interaction with Jupiter's magnetosphere

机译:欧罗巴与木星磁层相互作用的自洽多流体MHD模拟

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The Jovian moon, Europa, hosts a thin neutral gas atmosphere, which is tightly coupled to Jupiter's magnetosphere. Magnetospheric ions impacting the surface sputter off neutral atoms, which, upon ionization, carry currents that modify the magnetic field around the moon. The magnetic field in the plasma is also affected by Europa's induced magnetic field. In this paper we investigate the environment of Europa using our multifluid MHD model and focus on the effects introduced by both the magnetospheric and the pickup ion populations. The model self-consistently derives the electron temperature that governs the electron impact ionization process, which is the major source of ionization in this environment. The resulting magnetic field is compared to measurements performed by the Galileo magnetometer, the bulk properties of the modeled thermal plasma population is compared to the Galileo Plasma Subsystem observations, and the modeled surface precipitation fluxes are compared to Galileo Ultraviolet Spectrometer observations. The model shows good agreement with the measured magnetic field and reproduces the basic features of the plasma interaction observed at the moon for both the E4 and the E26 flybys of the Galileo spacecraft. The simulation also produces perturbations asymmetric about the flow direction that account for observed asymmetries.
机译:欧罗巴的木星月亮拥有稀薄的中性气体,与木星的磁层紧密耦合。撞击表面的磁层离子会溅出中性原子,这些中性原子在电离后会携带电流,从而改变月球周围的磁场。等离子体中的磁场也受到Europa感应磁场的影响。在本文中,我们使用多流体MHD模型研究了欧罗巴的环境,并重点关注了磁层和吸收离子种群引入的影响。该模型自洽地得出控制电子碰撞电离过程的电子温度,这是该环境下电离的主要来源。将产生的磁场与伽利略磁力计进行的测量进行比较,将模拟热等离子体种群的整体性质与伽利略等离子体子系统的观测结果进行比较,并将模拟表面降水通量与伽利略紫外光谱仪的观测结果进行比较。该模型与测得的磁场显示出良好的一致性,并再现了伽利略号飞船的E4和E26飞越物在月球观察到的等离子体相互作用的基本特征。该模拟还会产生关于流动方向不对称的扰动,这会导致观察到的不对称性。

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