Integrity monitoring for precise orbit determination of LEO satellites

被引:11
|
作者
Wang, Kan [1 ,2 ,3 ]
El-Mowafy, Ahmed [1 ]
Rizos, Chris [4 ]
机构
[1] Curtin Univ, Sch Earth & Planetary Sci, Perth, WA, Australia
[2] Chinese Acad Sci, Natl Time Serv Ctr, Xian, Peoples R China
[3] Univ Chinese Acad Sci, Beijing, Peoples R China
[4] UNSW, Sch Civil & Environm Engn, Sydney, NSW, Australia
基金
澳大利亚研究理事会;
关键词
LEO; POD; Integrity monitoring; GPS; Protection level; SERVICE; CLOCK; GNSS;
D O I
10.1007/s10291-021-01200-4
中图分类号
TP7 [遥感技术];
学科分类号
081102 ; 0816 ; 081602 ; 083002 ; 1404 ;
摘要
Due to an increasing requirement for high accuracy orbital information for low Earth orbit (LEO) satellites, precise orbit determination (POD) of LEO satellites is a topic of growing interest. To assure the safety and reliability of the applications requiring high accuracy LEO orbits in near-real-time, integrity monitoring (IM) is an essential operation of the POD process. In this contribution, the IM strategy for LEO POD in both the kinematic and reduced-dynamic modes is investigated. The overbounding parameters of the signal-in-space range error are investigated for the GPS products provided by the International GNSS Service's Real-Time Service and the Multi-GNSS Advanced Demonstration of Orbit and Clock Analysis service. Benefiting from the dynamic models used and the improved model strength, the test results based on the data of the LEO satellite GRACE FO-1 show that the average-case mean protection levels (PLs) can be reduced from about 3-4 m in the kinematic mode to about 1 m in the reduced-dynamic mode in the radial, along-track and cross-track directions. The overbounding mean values of the SISRE play the dominant role in the final PLs. In the reduced-dynamic mode and average-case projection, the IM availabilities reach above 99% in the radial, along-track and cross-track directions with the alert limit (AL) set to 2 m. The values are still above 98% with the AL set to 4 m, when the duty cycle of tracking is reduced to 40%, e.g., in the case of power limits for miniature satellites such as CubeSats.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Precise Relative Orbit Determination of Twin GRACE Satellites
    ZHAO Qile1
    Geo-Spatial Information Science, 2010, (03) : 221 - 225
  • [32] A new approach of orbit determination for LEO satellites based on optical tracking of GEO satellites
    Hu, Yunpeng
    Bai, Xianzong
    Chen, Lei
    Yan, Hongtao
    AEROSPACE SCIENCE AND TECHNOLOGY, 2019, 84 : 821 - 829
  • [33] Improved undifferenced ambiguity resolution for LEO precise orbit determination
    Gao, Geng
    Zhang, Shoujian
    Zou, Xiancai
    Kuang, Kaifa
    Yu, Nan
    ADVANCES IN SPACE RESEARCH, 2023, 72 (05) : 1518 - 1527
  • [34] A new ambiguity resolution method for LEO precise orbit determination
    Xingyu Zhou
    Hua Chen
    Weiping Jiang
    Yan Chen
    Taoyong Jin
    Tianjun Liu
    Yang Gao
    Journal of Geodesy, 2022, 96
  • [35] Experiment and Result of Precise Kinematic Orbit Determination for LEO Satellite
    Ruan, Rengui
    Feng, Laiping
    Wu, Xianbing
    CHINA SATELLITE NAVIGATION CONFERENCE (CSNC) 2015 PROCEEDINGS, VOL I, 2015, 340 : 195 - 204
  • [36] Improving LEO precise orbit determination with BDS PCV calibration
    Lu, Cuixian
    Zhang, Qian
    Zhang, Keke
    Zhu, Yiting
    Zhang, Wei
    GPS SOLUTIONS, 2019, 23 (04)
  • [37] A new ambiguity resolution method for LEO precise orbit determination
    Zhou, Xingyu
    Chen, Hua
    Jiang, Weiping
    Chen, Yan
    Jin, Taoyong
    Liu, Tianjun
    Gao, Yang
    JOURNAL OF GEODESY, 2022, 96 (07)
  • [38] LEO Precise Orbit Determination with Inter-satellite Links
    Li, Xingxing
    Jiang, Zihao
    Ma, Fujian
    Lv, Hongbo
    Yuan, Yongqiang
    Li, Xin
    REMOTE SENSING, 2019, 11 (18)
  • [39] Improving LEO precise orbit determination with BDS PCV calibration
    Cuixian Lu
    Qian Zhang
    Keke Zhang
    Yiting Zhu
    Wei Zhang
    GPS Solutions, 2019, 23
  • [40] Contribution of BDS-3 observations to the precise orbit determination of LEO satellites: a case study of TJU-01
    Wei, Kai
    Li, Min
    Xu, Tianhe
    Wang, Dixing
    Shi, Yali
    Yang, Honglei
    Dai, Xiaoji
    MEASUREMENT SCIENCE AND TECHNOLOGY, 2024, 35 (04)