论文标题

抑制两极化的薄磁尾电流板中的重新连接:2D模拟和含义

Suppression of reconnection in polarized, thin magnetotail current sheets: 2D simulations and implications

论文作者

An, Xin, Artemyev, Anton, Angelopoulos, Vassilis, Runov, Andrei, Lu, San, Pritchett, Philip

论文摘要

许多原位航天器的观察结果表明,地球磁尾中的磁重新连接在很大程度上受到重新连接的电流板构型的控制。最重要的薄电流特性之一是由强极化电场驱动的电子电流的优势,这是重新连接之前在地球磁尾中通常观察到的。我们使用粒子中的模拟来研究2D磁尾电流板中的磁重连接,其有限磁场组件正常,并且具有电流层极化。在相同的外部驾驶条件下,两极分化电流板中的重新连接的发生速率低于非极化电流板。两极分化电流板中的重新连接速率随着电子电流对跨尾电流的贡献的增加而降低。在背景温度较低的模拟中,重新连接电场较高。我们证明,在这种两极分化的电流板中重新连接后,流出能量通量主要以离子焓通量的形式,然后是电子焓通量,poynting通量,离子动能通量和电子动能通量。这些发现与航天器观察一致。由于当前的板偏振不沿磁尾尾统一,因此我们的结果表明,它可能会减慢最偏振的近地磁尾尾尾的重新连接,从而移动重新连接下尾的位置。

Many in-situ spacecraft observations have demonstrated that magnetic reconnection in the Earth's magnetotail is largely controlled by the pre-reconnection current sheet configuration. One of the most important thin current sheet characteristics is the preponderance of electron currents driven by strong polarized electric fields, which are commonly observed in the Earth's magnetotail well before the reconnection. We use particle-in-cell simulations to investigate magnetic reconnection in the 2D magnetotail current sheet with a finite magnetic field component normal to the current sheet and with the current sheet polarization. Under the same external driving conditions, reconnection in a polarized current sheet is shown to occur at a lower rate than in a nonpolarized current sheet. The reconnection rate in a polarized current sheet decreases linearly as the electron current's contribution to the cross-tail current increases. In simulations with lower background temperature the reconnection electric field is higher. We demonstrate that after reconnection in such a polarized current sheet, the outflow energy flux is mostly in the form of ion enthalpy flux, followed by electron enthalpy flux, Poynting flux, ion kinetic energy flux and electron kinetic energy flux. These findings are consistent with spacecraft observations. Because current sheet polarization is not uniform along the magnetotail, our results suggest that it may slow down reconnection in the most polarized near-Earth magnetotail and thereby move the location of reconnection onset downtail.

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