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Centimeter-Level Orbit Determination for TG02 Spacelab Using Onboard GNSS Data

机译:使用船上GNSS数据的TG02 SpaceLab的厘米级轨道确定

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摘要

Tiangong-2, the second Chinese manned spacecraft, was launched into low Earth orbit on 15 September 2016. The dual-frequency geodetic GNSS receiver equipped on it is supporting a number of scientific experiments in orbit. This paper uses the onboard GNSS data from 3-31 December 2016 (in the attitude mode of three-axis Earth-pointing stabilization) to analyze the data quantity, as well as the code multipath error. Then, the dynamic and reduced-dynamic methods are adopted to perform the post Precise Orbit Determination (POD) based on the carrier phase measurements, respectively. After that, the orbit accuracy is evaluated using a number of tests, which include the analysis of observation residuals, Overlapping Orbit Differences (OODs), orbit comparison between dynamic and reduced-dynamic and Satellite Laser Ranging (SLR) validation. The results show that: (1) the average Root Mean Square (RMS) of the on-board GNSS phase fitting residuals is 8.8 mm; (2) regarding the OODs determined by the reduced-dynamic method, the average RMS in radial (R), along-track (T) and cross-track (N) directions is 0.43 cm, 1.34 cm and 0.39 cm, respectively, and there are no obvious system errors; (3) the orbit accuracy of TG02 determined by the reduced-dynamic method is comparable to that of the dynamic method, and the average RMS of their differences in R, T, N and 3D directions is 3.05 cm, 3.60 cm, 2.52 cm and 5.40 cm, respectively; (4) SLR data are used to validate the reduced-dynamic orbits, and the average RMS along the station-satellite direction is 1.94 cm. It can be seen that both of these two methods can meet the demands of 3D centimeter-level orbit determination for TG02.
机译:Tiangong-2是第二款中文载人航天器,于2016年9月15日发射成低地球轨道。配备的双频大地电机GNSS接收器支持轨道中的一些科学实验。本文使用2016年12月3日(以3-31(以三轴接地稳定化的姿态模式)的船上GNSS数据使用,以分析数据量,以及代码多路径错误。然后,采用动态和减少动态方法基于载波相位测量来执行基于载波相位测量的Post精确的轨道确定(POD)。之后,使用许多测试评估轨道精度,包括观察残留的分析,重叠轨道差异(OOD),动态和减压和卫星激光测距(SLR)验证之间的轨道比较。结果表明:(1)板载GNSS相位配件残留物的平均均方根(RMS)为8.8毫米; (2)关于通过减少动态方法确定的oods,径向(r),沿轨道(t)和交叉轨道(n)方向的平均rms分别为0.43cm,1.34cm和0.39cm,没有明显的系统错误; (3)减少动态方法确定的TG02的轨道精度与动态方法的轨道精度相当,其差异的平均RMS差异为3.05厘米,3.60厘米,2.52厘米5.40厘米分别; (4)SLR数据用于验证减少动态轨道,沿电台卫星方向的平均rms为1.94厘米。可以看出,这两种方法都可以满足TG02的3D厘米级轨道轨道确定的要求。

著录项

  • 来源
    《Nature reviews Cancer》 |2018年第8期|共14页
  • 作者单位

    Chinese Acad Sci Shanghai Astron Observ 80 Nandan Rd Shanghai 200030 Peoples R China;

    Chinese Acad Sci Shanghai Astron Observ 80 Nandan Rd Shanghai 200030 Peoples R China;

    Univ Chinese Acad Sci 19 Yuquan Rd Beijing 100049 Peoples R China;

    Chinese Acad Sci Key Lab Space Utilizat Technol &

    Engn Ctr Space Utilizat 9 Dengzhuang South Rd;

    Chinese Acad Sci Shanghai Astron Observ 80 Nandan Rd Shanghai 200030 Peoples R China;

    Chinese Acad Sci Shanghai Astron Observ 80 Nandan Rd Shanghai 200030 Peoples R China;

    Chinese Acad Sci Shanghai Astron Observ 80 Nandan Rd Shanghai 200030 Peoples R China;

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

    TG02; multipath; orbit accuracy; POD; centimeter-level;

    机译:TG02;多径;轨道精度;豆荚;厘米级;

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