DETERMINATION OF ILF-WAVE CHARACTERISTICS MOST STRONGLY REACTING TO MINOR CHANGES OF IONOSPHERIC ELECTRON DENSITY IN A HIGH-LATITUDE REGION

O. Akhmetov, I. Mingalev, O. Mingalev, V. Belakhovsky, Z. Suvorova, S. Chernyakov
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引用次数: 4

Abstract

In this paper, we use numerical experiment methods to address the problem of determining characteristics of ILF (0.3–3 kHz) electromagnetic waves recorded in the surface layer and providing the maximum amount of information about the Earth–ionosphere waveguide. We have analyzed the effect of the horizontal spatial structure of electron density of the Earth–ionosphere waveguide on propagation of electromagnetic waves. We have identified characteristics that allow us to record them by instrumental methods in conditions of weakly disturbed ionosphere. The density profiles used in numerical experiments have been obtained from data acquired by the Partial Reflection Radar at the Polar Geophysical Institute, located at the radiophysical observatory Tumanny in the Murmansk Region (69.0° N, 35.7° E), and by the IRI2016 model during the March 15, 2013 solar flare and the subsequent magnetic storm on March 17, 2013. The electromagnetic signal propagation model used in this work is the adaptation of gas-hydrodynamic methods to electrodynamic applications. The model is based on the scheme of upwind approximation of spatial derivatives (Godunov’s method with correction of streams). We also use splitting by spatial directions and physical processes. Signal field attenuation due to conductivity and its rotation due to Hall conductivity of the medium are considered in separate splitting steps by analytical formulas.
测定对高纬度地区电离层电子密度微小变化反应最强烈的自波特征
本文采用数值实验的方法,解决了在地表记录的ILF (0.3-3 kHz)电磁波的特性测定问题,并提供了有关地球电离层波导的最大量信息。分析了地球-电离层波导电子密度的水平空间结构对电磁波传播的影响。我们已经确定了一些特征,使我们能够在电离层弱扰动的条件下用仪器方法记录它们。数值实验中使用的密度剖面是由位于摩尔曼斯克地区(69.0°N, 35.7°E)的Tumanny辐射物理观测站极地地球物理研究所部分反射雷达和IRI2016模型在2013年3月15日太阳耀斑和随后的2013年3月17日磁暴期间获得的数据。本工作中使用的电磁信号传播模型是气-水动力学方法对电动力学应用的适应。该模型基于空间导数的逆风近似方案(Godunov的方法与流的校正)。我们也使用空间方向和物理过程的分裂。信号场的衰减是由介质的电导率引起的,信号场的旋转是由介质的霍尔电导率引起的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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