极光弧周围的湍流

IF 2.9 2区 地球科学 Q2 ASTRONOMY & ASTROPHYSICS
Magnus F. Ivarsen, Devin R. Huyghebaert, Megan D. Gillies, Jean-Pierre St-Maurice, David R. Themens, Meers Oppenheim, Björn J. Gustavsson, Daniel Billett, Brian Pitzel, Draven Galeschuk, Eric Donovan, Glenn C. Hussey
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引用次数: 0

摘要

极光壮观的视觉效果来自高能带电粒子撞击下的受激原子和分子幕。这些粒子从地球磁尾的很远处被加速,导致它们沉淀到电离层中。高能粒子沉淀与产生电场的电流有关,其最终结果是消散地磁暴期间注入地球大气层的数百兆瓦到太瓦的能量。虽然人们对极光如何通过焦耳热耗散能量有很多了解,但对它如何通过小尺度等离子体湍流耗散能量却知之甚少。在这里,我们展示了第一组雷达和光学相结合的图像,这些图像可以高空间精度地跟踪这种湍流相对于粒子沉淀的位置。在 2021 年发生的两次地磁暴中,我们明确显示小尺度湍流(几米)优先产生于极光形式的边缘。我们发现,湍流既出现在极光形态的极地和赤道方向,也出现在南北方向的极光形态之间。这些测量结果清楚地表明,极光等离子体小尺度湍流是极光产生的电流系统不可分割的一部分,即极光形式周围的湍流传输通过焦耳加热增强了电离层的能量沉积,同时降低了电场的平均强度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Turbulence Around Auroral Arcs

Turbulence Around Auroral Arcs

Turbulence Around Auroral Arcs

The spectacular visual displays from the aurora come from curtains of excited atoms and molecules, impacted by energetic charged particles. These particles are accelerated from great distances in Earth's magnetotail, causing them to precipitate into the ionosphere. Energetic particle precipitation is associated with currents that generate electric fields, and the end result is a dissipation of the hundreds of gigawatts to terrawatts of energy injected into Earth's atmosphere during geomagnetic storms. While much is known about how the aurora dissipates energy through Joule heating, little is known about how it does so via small-scale plasma turbulence. Here we show the first set of combined radar and optical images that track the position of this turbulence, relative to particle precipitation, with high spatial precision. During two geomagnetic storms occurring in 2021, we unambiguously show that small-scale turbulence (several meters) is preferentially created on the edges of auroral forms. We find that turbulence appears both poleward and equatorward of auroral forms, as well as being nestled between auroral forms in the north-south direction. These measurements make it clear that small scale auroral plasma turbulence is an integral part of the electrical current system created by the aurora, in the sense that turbulent transport around auroral forms enhances ionospheric energy deposition through Joule heating while at the same time reducing the average strength of the electric field.

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来源期刊
Journal of Geophysical Research: Space Physics
Journal of Geophysical Research: Space Physics Earth and Planetary Sciences-Geophysics
CiteScore
5.30
自引率
35.70%
发文量
570
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