Real-time high-precision baseline measurement of satellite formation flying based on GNSS

被引:4
|
作者
Cai, Yingkai [1 ]
Li, Yichao [1 ]
Wang, Zhaokui [1 ]
机构
[1] Tsinghua Univ, Sch Aerosp Engn, Beijing 100084, Peoples R China
基金
中国国家自然科学基金;
关键词
Real-time baseline measurement; Satellite formation flying; Global navigation satellite system; Ambiguity resolution; High-precision single- epoch positioning; ORBIT DETERMINATION; MODEL; GPS; RECEIVER; IGS;
D O I
10.1016/j.asr.2024.02.025
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
With the establishment of the Chinese space station, a series of space science missions will be conducted in its vicinity. One of the extended tasks for the in -orbit service of space station is the formation flying of small satellites centered around the space station. Satellite formations can perform simultaneous three-dimensional observations of the space station, generating three-dimensional images and monitoring and assessing the status of critical components of the space station. The real-time and accurate relative position measurement is one of the key issues in formation flying. It is a fundamental prerequisite for maintaining and reconfiguring formation configurations, collision avoidance and safety assurance. GNSS-based relative positioning is a low-cost and high -precision measurement method, which is not constrained by light, weather, or relative attitude of satellites. This study introduces a novel approach to determine the relative position of satellites based on single -epoch Global Navigation Satellite System (GNSS) carrier phase difference measurements. Unlike traditional methods, the proposed technique eliminates the need for precise ephemeris and clock bias files and does not require historical observation data. The algorithm avoids the complexity associated with full cycle ambiguity jumps, facilitating real-time, high -precision calculations of relative position baseline vectors. Special attention is given to the influence of Geostationary Earth Orbit (GEO) satellites in the BeiDou Navigation Satellite System (BDS), and measures are taken to mitigate their impact on measurement accuracy by adjusting their observation weights. Our newly developed GNSS-based real-time measurement module, designed for high -quality GNSS signal reception and data communication, was tested on terrestrial and simulated low -orbit platforms. Remarkably, over baselines ranging from 10 m to 9.3 km, while traditional pseudorange differential measurements showed errors up to 1.5571 m, our proposed method consistently held errors under 5 cm and ensured computational speeds within 0.1 s per epoch. High -dynamic zero -baseline tests further validated its potential, with errors less than 1 cm. The innovations encapsulated in this work, resonating with the evolving trends of miniaturized and scalable satellites, present a cost-efficient and real-time solution for inter -satellite relative position measurement. This promises a new horizon in satellite formation technology, with future endeavors focusing on on -orbit experiments. (c) 2024 COSPAR. Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:5171 / 5187
页数:17
相关论文
共 50 条
  • [31] Real-time high-resolution tropospheric delay mapping based on GFS forecasts and GNSS
    Lu, Cuixian
    Zhang, Xuanzhen
    Zheng, Yuxin
    Liu, Chengbo
    He, Bo
    GPS SOLUTIONS, 2024, 28 (04)
  • [32] A quality control method based on improved IQR for estimating multi-GNSS real-time satellite clock offset
    Xie, Wei
    Huang, Guanwen
    Fu, Wenju
    Shu, Bao
    Cui, Bobin
    Li, Mengyuan
    Yue, Fan
    MEASUREMENT, 2022, 201
  • [33] Assessment of Real-Time PPP with Trimble RTX correction service for real-time dynamic displacement monitoring based on high-rate GNSS observations
    Yigit, Cemal Ozer
    Bezcioglu, Mert
    Ilci, Veli
    Ozulu, Ibrahim Murat
    Alkan, Reha Metin
    Dindar, Ahmet Anil
    Karadeniz, Baris
    MEASUREMENT, 2022, 201
  • [34] Estimating GNSS satellite clock error to provide a new final product and real-time services
    Li, Haojun
    Li, Xiaoming
    Xiao, Jingxin
    GPS SOLUTIONS, 2024, 28 (01)
  • [35] A flexible strategy for handling the datum and initial bias in real-time GNSS satellite clock estimation
    Zhao, Lewen
    Dousa, Jan
    Ye, Shirong
    Vaclavovic, Pavel
    JOURNAL OF GEODESY, 2020, 94 (01)
  • [36] RANSAC-based instantaneous real-time kinematic positioning with GNSS triple-frequency signals in urban areas
    Cheng, Qi
    Chen, Wu
    Sun, Rui
    Wang, Junhui
    Weng, Duojie
    JOURNAL OF GEODESY, 2024, 98 (04)
  • [37] Airborne Pseudolite Distributed Positioning based on Real-time GNSS PPP
    Huang, Panpan
    Rizos, Chris
    Roberts, Craig
    JOURNAL OF NAVIGATION, 2019, 72 (05) : 1159 - 1178
  • [38] High-precision time synchronization of kinematic navigation system using GNSS RTK differential carrier phase time transfer
    Xue, Xia
    Qin, Honglei
    Lu, Hui
    MEASUREMENT, 2021, 176
  • [39] Determination of near real-time GNSS satellite clocks for the FORMOSAT-7/COSMIC-2 satellite mission
    Tzu-Pang Tseng
    Shu-Ya Chen
    Kun-Lin Chen
    Cheng-Yung Huang
    Wen-Hao Yeh
    GPS Solutions, 2018, 22
  • [40] A review of real-time multi-GNSS precise orbit determination based on the filter method
    Lou, Yidong
    Dai, Xiaolei
    Gong, Xiaopeng
    Li, Chenglong
    Qing, Yun
    Liu, Yang
    Peng, Yaquan
    Gu, Shengfeng
    SATELLITE NAVIGATION, 2022, 3 (01):