A Global Navigation Augmentation System Based on LEO Communication Constellation

Y. Meng, Lang Bian, Lin Han, Wenying Lei, T. Yan, Mu He, Xingxing Li
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引用次数: 35

Abstract

In the background of booming development of low earth orbit (LEO) communication systems, a global navigation augmentation system based on LEO communication constellation is proposed in this paper. The LEO satellites can serve both as space-based monitoring stations and as navigation information broadcasting sources. The system can be developed together with the LEO communication system, and do not need to build a new system. The Hongyan LEO communication system under construction by China Aerospace and Technology Corporation (CASC) is adopted for the analysis in the paper. When served as space-based monitoring stations, the LEO satellites can jointly determine the precise orbits and clock errors of GNSS satellites and LEO satellites with the data from the mounted high precision GNSS monitoring receiver and the ground based monitoring stations. When served as navigation information broadcasting sources, the Assistant GNSS (AGNSS) architecture is used to broadcast assistant navigation information, and the general-purpose GNSS receiver can realize fast signal acquisition in the extremely complicate environment and achieve better antijamming capability for the navigation availability augmentation. For the navigation precision augmentation, besides the precise orbit, precise clock error, and integrity augmentation information, an additional navigation augmentation signal is broadcasted to realize global precise point positioning (GPPP) with sub-meter positioning precision level in dynamic mode and sub-decimeter precision level in static mode. The convergence time of precise point positioning is shorten from 30 minutes using a GNSS system alone to less than 5 minutes using a GNSS system together with the LEO global navigation augmentation system.
基于低轨道通信星座的全球导航增强系统
在低地球轨道通信系统蓬勃发展的背景下,提出了一种基于低地球轨道通信星座的全球导航增强系统。低轨道卫星既可以作为天基监测站,也可以作为导航信息广播源。该系统可与低轨道通信系统共同开发,无需新建系统。本文采用中国航天科技集团公司(CASC)正在建设的红岩LEO通信系统进行分析。LEO卫星作为天基监测站时,利用安装的高精度GNSS监测接收机和地面监测站的数据,共同确定GNSS卫星和LEO卫星的精确轨道和时钟误差。当作为导航信息广播源时,采用辅助GNSS (Assistant GNSS, AGNSS)架构广播辅助导航信息,通用GNSS接收机可以在极其复杂的环境下实现快速信号采集,具有较好的抗干扰能力,增强了导航的可用性。在导航精度增强方面,除了精确的轨道、精确的时钟误差和完整性增强信息外,还通过广播额外的导航增强信号,实现动态模式下亚米级定位精度和静态模式下亚分米级定位精度的全球精确点定位(GPPP)。精确点定位的收敛时间从单独使用GNSS系统的30分钟缩短到与LEO全球导航增强系统联合使用的5分钟以内。
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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