磁鞘高速喷流驱动当地正午附近的多个极光弧

IF 8.3 Q1 GEOSCIENCES, MULTIDISCIPLINARY
AGU Advances Pub Date : 2024-09-23 DOI:10.1029/2024AV001197
Hui-Xuan Qiu, De-Sheng Han, Run Shi, Jianjun Liu
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引用次数: 0

摘要

磁鞘高速射流(HSJs)是一种以动态压力增加为特征的瞬态扰动。它们可以引起各种地球效应,包括超低频(ULF)波和极光。从理论上讲,当超低频波以阿尔芬波的形式传播到电离层时,可以加速电子并产生离散极光。然而,HSJs 可以驱动哪些类型的极光,其基本机制是什么,这些仍然是未知数。在这里,我们利用协调的磁鞘原位和地面观测结果表明,当在磁鞘中发现一个HSJ时,就会在当地正午附近观测到多个与极光椭圆平行的极光弧。这些极光弧的电子能量谱图显示出 "倒 V "结构,表明存在准静态平行电场。与此同时,地面上也探测到了长周期超低频信号,这表明阿尔夫文波的到来。这些观测结果通过使用现实观测输入的动力学模拟来表示,表明与长周期阿尔弗韦恩波产生 "倒 V "结构的理论一致。这项研究在 HSJ、超低频波和极光之间建立了一种之前尚未建立的联系,并提供了在当地正午附近产生离散极光弧的机制,这可能揭示了论文中所示的在当地正午附近经常观测到的特定极光活动背后的潜在机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Magnetosheath High-Speed Jet Drives Multiple Auroral Arcs Near Local Noon

Magnetosheath High-Speed Jet Drives Multiple Auroral Arcs Near Local Noon

Magnetosheath High-Speed Jets (HSJs) are transient disturbances characterized by increased dynamic pressure. They can cause various geoeffects, including ultra-low-frequency (ULF) waves and auroras. Theoretically, when ULF waves propagate into the ionosphere as Alfvén waves, they can accelerate electrons and generate discrete auroras. However, what types of aurora can be driven by HSJs and what are the underlying mechanisms remain unknown. Using coordinated magnetosheath in situ and ground observations, here, we showed that when a HSJ was identified in the magnetosheath, multiple auroral arcs parallel to the auroral oval were observed near local noon. The electron energy spectrogram of these arcs exhibited “inverted-V” structures, indicating the existence of quasi-static parallel electric fields. Concurrently, long-period ULF signals were detected on the ground, suggesting the arrival of Alfvén waves. These observations are represented by a kinetic simulation using realistic observational inputs, showing consistency with the theory regarding the generation of the “inverted-V” structure by long-period Alfvén waves. This study builds a previously unestablished connection among HSJ, ULF wave, and aurora, and provides a mechanism for generation of discrete auroral arcs near local noon, which may reveal the underlying mechanism behind a specific auroral activity commonly observed near local noon as shown in the paper.

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