论文标题

小磁层中的电子动力学:来自全球全动作等离子体汞的见解

Electron dynamics in small magnetospheres: insights from global fully-kinetic plasma simulations of planet Mercury

论文作者

Lavorenti, Federico, Henri, Pierre, Califano, Francesco, Deca, Jan, Aizawa, Sae, André, Nicolas, Benkhoff, Johannes

论文摘要

汞星球具有一个小但高度动态的磁层,其中电子的作用和动力学在很大程度上未知。我们旨在建模撞击汞磁层上的太阳能电子的全局动力学。与局部加速过程和全球循环模式给出了特定的相关性。这项工作的目标是通过三维,完全动力学的粒子模拟来追求的,该模拟建模太阳风与Hermean磁层的相互作用。这种方法允许对等离子体动力学从大行星刻度到电子动力学尺度的自洽表示。使用两种不同的太阳风条件进行数值模拟:纯粹向北或纯粹向南的星际磁场方向。我们发现以电子为主导的磁层边界(弓形冲击和磁极)流动的高等离子体电流(几$ $ $ $ 1/m2的阶)。该电流是由我们模型中解决的小型电子物理学驱动的。此外,当行星际磁场向南定向时,由于磁重新连接,我们观察到强大的电子加速度,直至数十个KEV。这种能量电子被部分捕获在行星的偶极磁场中,主要是在夜幕降临。最后,通过研究我们沿着Mariner10和Bepicolombo First-Mercury-Flyby轨迹的电子中电子的分布,我们建议两个航天器都在最接近的方法围绕着这种充满活力的准捕获的电子种群。

The planet Mercury possesses a small but highly dynamic magnetosphere in which the role and dynamics of electrons are still largely unknown. We aim at modeling the global dynamics of solar wind electrons impinging on Mercury's magnetosphere. Particular relevance is given to local acceleration processes and the global circulation patterns. The goals of this work are pursued by means of three-dimensional, fully kinetic particle-in-cell simulations modeling the interaction of the solar wind with the Hermean magnetosphere. This method allows a self-consistent representation of the plasma dynamics from the large planetary scale down to the electron kinetic scale. Numerical simulations are carried out using two different solar wind conditions: purely northward or purely southward interplanetary magnetic field direction. We find a high plasma current (of the order of few $μ$A/m2) flowing at the magnetospheric boundaries (bow shock and magnetopause) dominated by electrons. This current is driven by the small-scale electron physics resolved in our model. Furthermore, we observe strong electron acceleration up to tens of keV as a consequence of magnetic reconnection when the interplanetary magnetic field is directed southward. Such energetic electrons are partially trapped in the dipolar magnetic field of the planet mainly at nightside. Finally, by studying the distribution of electrons in our simulations along Mariner10 and BepiColombo first-Mercury-flyby trajectories, we propose that both spacecraft observed this energetic quasi-trapped electron population around closest approach.

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