预测热层和电离层对2020年6月21日日环食的响应

IF 2.9 3区 地球科学
Tong Dang, JiuHou Lei, WenBin Wang, MaoDong Yan, DeXin Ren, FuQing Huang
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引用次数: 25

摘要

2020年6月21日,从非洲到东南亚的低纬度地区将出现日环食。日食最大遮挡的最高纬度约为30°。这次低纬度日食为探索日食对低纬度电离层-热层(I-T)系统,特别是赤道电离异常区的影响提供了一个独特的、前所未有的机会。本文利用热层-电离层-电动力学环流模式模拟,定量预测了这次日食对I-T系统的影响。总电子含量(TEC)显著增加约2个TEC单位出现在赤道电离异常区,即使该区域仍处于日食的阴影中。这种TEC增强持续近4.5小时,在日食结束后很长一段时间。进一步的模型控制模拟表明,TEC的增加主要是由日蚀引起的等离子体输运引起的,这与日蚀引起的压力梯度变化引起的北中性风扰动有关。结果表明,日食对I-T系统的影响不是暂时的、线性的,而是一个动态的、能量耦合的系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Prediction of the thermospheric and ionospheric responses to the 21 June 2020 annular solar eclipse

On 21 June 2020, an annular solar eclipse will traverse the low latitudes from Africa to Southeast Asia. The highest latitude of the maximum eclipse obscuration is approximately 30°. This low-latitude solar eclipse provides a unique and unprecedented opportunity to explore the impact of the eclipse on the low-latitude ionosphere–thermosphere (I–T) system, especially in the equatorial ionization anomaly region. In this study, we describe a quantitative prediction of the impact of this upcoming solar eclipse on the I–T system by using Thermosphere–Ionosphere–Electrodynamics General Circulation Model simulations. A prominent total electron content (TEC) enhancement of around 2 TEC units occurs in the equatorial ionization anomaly region even when this region is still in the shadow of the eclipse. This TEC enhancement lasts for nearly 4.5 hours, long after the solar eclipse has ended. Further model control simulations indicate that the TEC increase is mainly caused by the eclipse-induced transequatorial plasma transport associated with northward neutral wind perturbations, which result from eclipse-induced pressure gradient changes. The results illustrate that the effect of the solar eclipse on the I–T system is not transient and linear but should be considered a dynamically and energetically coupled system.

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来源期刊
Earth and Planetary Physics
Earth and Planetary Physics GEOSCIENCES, MULTIDISCIPLINARY-
自引率
17.20%
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