...
首页> 外文期刊>Journal of Geodesy >Integrated processing of ground- and space-based GPS observations: improving GPS satellite orbits observed with sparse ground networks
【24h】

Integrated processing of ground- and space-based GPS observations: improving GPS satellite orbits observed with sparse ground networks

机译:基于地面和空间的GPS观测的综合处理:改善用稀疏地网络观察到的GPS卫星轨道

获取原文
获取原文并翻译 | 示例
           

摘要

The precise orbit determination (POD) of Global Navigation Satellite System (GNSS) satellites and low Earth orbiters (LEOs) are usually performed independently. It is a potential way to improve the GNSS orbits by integrating LEOs onboard observations into the processing, especially for the developing GNSS, e.g., Galileo with a sparse sensor station network and Beidou with a regional distributed operating network. In recent years, few studies combined the processing of ground- and space-based GNSS observations. The integrated POD of GPS satellites and seven LEOs, including GRACE-A/B, OSTM/Jason-2, Jason-3 and, Swarm-A/B/C, is discussed in this study. GPS code and phase observations obtained by onboard GPS receivers of LEOs and ground-based receivers of the International GNSS Service (IGS) tracking network are used together in one least-squares adjustment. The POD solutions of the integrated processing with different subsets of LEOs and ground stations are analyzed in detail. The derived GPS satellite orbits are validated by comparing with the official IGS products and internal comparison based on the differences of overlapping orbits and satellite positions at the day-boundary epoch. The differences between the GPS satellite orbits derived based on a 26-station network and the official IGS products decrease from 37.5 to 23.9 mm (34%improvement) in 1D-mean RMS when adding seven LEOs. Both the number of the space-based observations and the LEO orbit geometry affect the GPS satellite orbits derived in the integrated processing. In this study, the latter one is proved to be more critical. By including three LEOs in three different orbital planes, the GPS satellite orbits improve more than from adding seven well-selected additional stations to the network. Experiments with a ten-station and regional network show an improvement of the GPS satellite orbits from about 25 cm to less than five centimeters in 1D-mean RMS after integrating the seven LEOs.
机译:全球导航卫星系统(GNSS)卫星和低地球轨道(LEOS)的精确轨道确定(POD)通常是独立的。通过将LEOS船上观察整合到处理中,特别是对于具有稀疏传感器站网络和具有区域分布式操作网络的伽利略的伽利略,是一种通过将LEOS船上观察整合到加工中来改进GNSS轨道的潜在方法。近年来,很少有研究结合了基于地面和空间的GNSS观测的处理。本研究讨论了GPS卫星GPS卫星和七个LEO,包括Grace-A / B,OSTM / JASON-2,JASON-3和Swarm-A / B / C的集成豆荚。 GPS代码和通过LEOS的GPS接收器获得的GPS代码和相位观察,以及国际GNSS服务(IGS)跟踪网络的基于地基接收器(IGS)跟踪网络中的一个最小二乘调整。详细地分析了利用LEOS和地站不同亚组的综合处理的POD解决方案。通过与官方IGS产品和基于日间边界时代的重叠轨道和卫星位置的差异进行比较,通过比较衍生的GPS卫星轨道。基于26站网络的GPS卫星轨道之间的差异在添加七个LEO时,在1D平均RMS中从37.5至23.9毫米(34%的改进)降低了37.5至23.9毫米(34%)。基于空间的观测和Leo轨道几何的数量都影响了在集成处理中导出的GPS卫星轨道。在这项研究中,后者被证明是更关键的。通过在三个不同的轨道飞机中包括三个leos,GPS卫星轨道可以从增加七个选择的附加站到网络。具有十站和区域网络的实验显示在整合七个leos之后在1D-均值的RMS中从大约25厘米到小于5厘米的GPS卫星轨道的改善。

著录项

  • 来源
    《Journal of Geodesy》 |2020年第10期|96.1-96.13|共13页
  • 作者单位

    Deutsch GeoForschungsZentrum GFZ D-14473 Potsdam Germany|Tech Univ Berlin Inst Geodesy & Geoinformat Sci Str 17 Juni 135 D-10623 Berlin Germany;

    Deutsch GeoForschungsZentrum GFZ D-14473 Potsdam Germany;

    Deutsch GeoForschungsZentrum GFZ D-14473 Potsdam Germany;

    Deutsch GeoForschungsZentrum GFZ D-14473 Potsdam Germany|Tech Univ Berlin Inst Geodesy & Geoinformat Sci Str 17 Juni 135 D-10623 Berlin Germany;

    Deutsch GeoForschungsZentrum GFZ D-14473 Potsdam Germany|Tech Univ Berlin Inst Geodesy & Geoinformat Sci Str 17 Juni 135 D-10623 Berlin Germany;

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

    POD; Integrated processing; Sparse ground network; GPS; LEOs; GRACE; Jason; Swarm;

    机译:POD;综合处理;稀疏地面网络;GPS;leos;Grace;杰森;群;

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号