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Spatio-temporal analysis of ionospheric disturbances for ground based augmentation systems over a midlatitude region

机译:在中位区基于地面增强系统的电离层扰动的时空分析

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摘要

Forcings from above and below the ionosphere can cause disturbances that need to be detected and corrected for navigation systems. Ground Based Augmentation Systems (GBAS) are used to give corrections to aircraft navigation systems while landing. These systems use regional ionosphere monitoring algorithms to detect the anomalies in the ionosphere. The aim of this study is to understand occurrence of ionosphere anomalies and their trends over Turkey. A comprehensive analysis of spatio-temporal variability of ionosphere is carried out for a midlatitude GPS network using Slant Total Electron Content (STEC). Differential Rate Of TEC (DROT), which is a measure of the amount of deviation of temporal derivative of TEC from its trend, is used to detect and classify the level of such disturbances. The GPS satellite tracks are grouped into north, east, west and over directions. The 24 h is divided into six time intervals. The percentage occurrence of each DROT category and the deviation from STEC trend in magnitude are calculated and grouped into satellite track directions and time intervals for 2010 (low solar activity), 2011 and 2012 (medium solar activity). The highest level of disturbances is observed in north and west directions, and during sunrise and sunset hours. The dominant periods of percentage occurrences are diurnal (22-25 h), semidiurnal (12-13 h) and terdiurnal (8-9 h) followed by quasi two-day and quasi 16-day periods. Disturbances corresponding to 50% < DROT < 70% are mostly visible during low solar activity years with magnitudes from 1 to 2 TECU. Geomagnetic storms can cause aperiodic larger scale disturbances that are mostly correlated with DROT > 70%. In 2012, the magnitude of such disturbances can reach 5 TECU. The anisotropic and dynamic nature of midlatitude ionosphere is reflected in the spatio-temporal and spectral distributions of DROT, and their percentage occurrences. This study serves a basis for future studies about development of a regional ionosphere monitoring for Turkey.
机译:从电离层上方和下方的强制可能导致需要检测和校正导航系统的干扰。基于地面的增强系统(GBA)用于在降落时对飞机导航系统进行校正。这些系统使用区域电离层监测算法来检测电离层中的异常。本研究的目的是了解对土耳其的离子层异常的发生及其趋势。使用倾斜全电子含量(STEC)对中位GPS网络进行了对电离层的时空变异的综合分析。 TEC(DROT)的微分率是从其趋势的TEC的时间衍生的偏差量的衡量标准,用于检测和分类这种干扰的水平。 GPS卫星轨道被分组为北,东,西部和方向。 24小时分为六个时间间隔。计算每个DROT类别的百分比和与STEC趋势的偏差幅度幅度呈现,并分组成卫星轨道方向和2010年(低太阳能活动),2011和2012(中太阳能活动)的时间间隔。在南北和西部方向和日出和日落时段观察到最高障碍。百分比百分比的百分比是昼夜(22-25小时),半峰(12-13小时)和Terdiurnal(8-9小时),然后是准为期两天和准16天。对应于50% 70%。在2012年,这种干扰的大小可以达到5个TECU。中际电离层的各向异性和动态性质反映在牵引的时空和光谱分布中,以及它们的百分比发生。本研究为未来关于土耳其区域电离层监测的发展的基础。

著录项

  • 来源
    《Advances in space research》 |2020年第9期|2099-2118|共20页
  • 作者

    M. Koroglu; F. Arikan;

  • 作者单位

    Roketsan Missiles Inc. Department of Guidance Design 06780 Elmadag. Ankara Turkey Hacettepe University Department of Electrical and Electronics Engineering 06800 Beytepe Ankara Turkey;

    Hacettepe University Department of Electrical and Electronics Engineering 06800 Beytepe Ankara Turkey;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Midlatitude ionosphere; GPS-TEC; Differential Rate Of TEC (DROT);

    机译:中间电离层;GPS-TEC;TEC的差分率(drot);

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