多尺度分析揭示了低纬电离层闪烁发生的外部驱动因素

L. Spogli, M. Piersanti, C. Cesaroni, M. Materassi, A. Cicone, L. Alfonsi, V. Romano, R. Ezquer
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引用次数: 16

摘要

在低纬度电离层,赤道等离子体气泡的形成在地球空间安静条件下呈现出规律的行为。等离子体气泡中嵌入的电离层不规则性可能导致全球导航卫星系统信号的振幅闪烁。太阳活动扰乱了磁层-电离层系统的正常行为,导致这种产生闪烁的电离层不规则性的增强或抑制。在同一场风暴中,电离层闪烁的抑制和增强都可能发生,这取决于风暴到达的当地时间和风暴的特征。从极光纬度穿透并干扰电离层电动力学的电场通常被强调为抑制/增强闪烁的主要原因。除了这一机制外,扰动发电机也是同时存在的关键物理现象,这是由于从高空向赤道纬度的加热对流引起的热层风的变化,干扰了赤道电喷流的电动力学[1]。本文分析了位于赤道电离层异常南峰下的阿根廷圣米格尔Tucumán上空的闪烁现象,重点分析了其多尺度变率以及地球空间强迫因子与电离层响应之间的因果关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Role of the external drivers in the occurrence of low-latitude ionospheric scintillation revealed by multi-scale analysis
In the low latitude ionosphere, the formation of Equatorial Plasma Bubbles presents a regular behavior under quiet conditions of the geospace. The ionospheric irregularities embedded in the plasma bubbles may lead to amplitude scintillation of Global Navigation Satellite Systems signals. Solar events disturb the regular behavior of the magnetosphere-ionosphere system, leading to an intensification or a suppression of such ionospheric irregularities producing scintillations. During the same storm, inhibition and intensification of the ionospheric scintillations can both occur, depending on the local time of the storm arrival and on the storm features. Electric fields penetrating from the auroral latitudes and disturbing the ionospheric electrodynamics are commonly highlighted as the principal responsible for the inhibited/enhanced scintillations. Beside this mechanism, the disturbance dynamo is the concurrent key-physical phenomenon, being due to variations of the thermospheric winds induced by heating convecting from high towards equatorial latitudes and disturbing the electrodynamics of the Equatorial Electrojet [1]. In the present work, we analyze the scintillation over San Miguel de Tucumán (Argentina), located under the southern crest of the Equatorial Ionospheric Anomaly, focusing on the multi-scale variability and on the causal relationship between forcing factors from the geospace and the ionospheric response.
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