DIAGNOSTICS OF THE STOCHASTIC IONOSPHERIC CHANNEL IN THE DECAMETER BAND OF RADIO WAVES

N. T. Afanasiev, S. O. Chudaev
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引用次数: 2

Abstract

We propose a method for direct diagnostics of a stochastic ionospheric radio channel. This method can recalculate probe signal characteristics into transmitted signal characteristics. We derive analytical equations of second-order statistical moments for trajectory characteristics of the main and probe signals propagating in a three-dimensional randomly inhomogeneous ionosphere. We take into account boundary conditions at signal transmission and reception points. As a model of random irregularities of permittivity of the ionosphere, we utilize the concept of a changing space-time correlation ellipsoid, which is self-consistent with spatial changes in the average ionosphere. Time fluctuations of random irregularities are taken into account by the hypothesis of frozen transfer. We use analytical relationships to calculate the expected statistical characteristics of decameter signals along oblique probing paths of the ionosphere. An operational numerical algorithmization of the formulas derived is proposed. We report results of numerical experiments to determine the expected phase variances, group delay, and Doppler frequency shift of the main signal on a given single-hop path, based on measurements of these characteristics of a probe signal on a secondary path. We demonstrate the efficiency of the proposed method for diagnosing statistical trajectory characteristics of a decameter signal along single-hop paths under conditions when ground points of transmission and reception of the main and probe signals are outside the vicinity of focusing points of the wave field.
无线电波十米波段随机电离层信道的诊断
我们提出了一种直接诊断随机电离层无线电信道的方法。该方法可以将探测信号特性重新计算为发射信号特性。我们推导了主信号和探测信号在三维随机非均匀电离层中传播的轨迹特性的二阶统计矩解析方程。我们考虑了信号发射点和接收点的边界条件。作为电离层介电常数随机不规则性的模型,我们使用了变化的时空相关椭球的概念,它与平均电离层的空间变化是自一致的。冻结转移假设考虑了随机不规则性的时间波动。我们使用解析关系来计算沿电离层倾斜探测路径的十米信号的预期统计特性。对推导出的公式提出了一种可操作的数值算法。我们报告了数值实验的结果,以确定在给定的单跳路径上主信号的预期相位方差、群延迟和多普勒频移,基于在次要路径上探测信号的这些特性的测量。当主信号和探测信号的发射和接收地不在波场聚焦点附近时,我们证明了所提出的方法在单跳路径上诊断十米信号统计轨迹特征的效率。
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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