用于未来低地轨道导航增强的顶部全球广播电离层延迟校正模型

IF 3.9 2区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS
Yan Yang, Fei Guo, Chengpan Tang, Mengjie Wu, Kai Li, Xiaohong Zhang, Enyuan Tu
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引用次数: 0

摘要

在本文中,我们提出了设计顶侧广播电离层模型的解决方案,以实现未来的低地球轨道(LEO)导航增强(LEO-NA)服务。考虑到缺乏全球站点观测来开发 LEO-NA 电离层模型,我们利用来自低地轨道卫星的丰富全球导航卫星系统(GNSS)数据来确定顶侧全球广播电离层延迟。该延迟可与现有的全球导航卫星系统广播电离层延迟校正模型相结合,以确定低地轨道-近地轨道电离层延迟。首先,评估了不同阶次球面谐波(SH)模型在生成全球顶侧电离层地图方面的性能。结果表明,通过将阶数从 1 增加到 2,模型的内部和外部精度显著提高。不过,阶数从 2 增加到 8 会导致内部和外部均方根误差的精确度分别降低 0.10 和 0.11 TECU(总电子含量单位)。考虑到与北斗全球电离层延迟校正模型的兼容性、导航电文中有限的数据容量、电离层模型精度和计算效率,我们选择二阶 SH 模型作为顶侧电离层广播模型,并概述了计算广播系数的策略。最后,在太阳活动频繁和不频繁期间对顶部全球广播电离层延迟校正模型的准确性进行了评估。2009 年和 2014 年的均方根平均值分别为 1.49 和 1.88 TECU。2009 年和 2014 年的模型可分别校正 67.30% 和 72.49% 的电离层延迟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The topside global broadcast ionospheric delay correction model for future LEO navigation augmentation

The topside global broadcast ionospheric delay correction model for future LEO navigation augmentation

In this paper, we propose a solution of designing a topside broadcast ionospheric model to enable the future low earth orbit (LEO) navigation augmentation (LEO-NA) services. Considering the lack of global station observations to develop the LEO-NA ionosphere model, we utilize abundant global navigation satellite system (GNSS) data from LEO satellites to determine the topside global broadcast ionospheric delay. This delay can be combined with existing GNSS broadcast ionospheric delay correction models to determine LEO-NA ionospheric delay. First, the performance of the different-order spherical harmonic (SH) model is evaluated in generating a global topside ionospheric map. The results indicate that by increasing the order from 1 to 2, the internal and external accuracy of the model improves significantly. However, increasing the order from 2 to 8 leads to a decrease in accuracy of 0.10 and 0.11 TECU (total electron content unit) for the internal and external root mean square error. Taking into account compatibility with the Beidou global ionospheric delay correction model, limited data capacity in the navigation message, ionospheric model accuracy, and computational efficiency, we select the second-order SH model as the topside ionosphere broadcast model and outline the strategy for calculating broadcast coefficients. Finally, the accuracy of the topside global broadcast ionospheric delay correction model is evaluated during periods of high and low solar activity. The mean values of root mean square in 2009 and 2014 are 1.49 and 1.88 TECU, respectively. The model in 2009 and 2014 can correct for 67.30% and 72.49% of the ionospheric delay, respectively.

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来源期刊
Journal of Geodesy
Journal of Geodesy 地学-地球化学与地球物理
CiteScore
8.60
自引率
9.10%
发文量
85
审稿时长
9 months
期刊介绍: The Journal of Geodesy is an international journal concerned with the study of scientific problems of geodesy and related interdisciplinary sciences. Peer-reviewed papers are published on theoretical or modeling studies, and on results of experiments and interpretations. Besides original research papers, the journal includes commissioned review papers on topical subjects and special issues arising from chosen scientific symposia or workshops. The journal covers the whole range of geodetic science and reports on theoretical and applied studies in research areas such as: -Positioning -Reference frame -Geodetic networks -Modeling and quality control -Space geodesy -Remote sensing -Gravity fields -Geodynamics
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