Multi-GNSS orbit determination using satellite laser ranging

被引:1
作者
Grzegorz Bury
Krzysztof Sośnica
Radosław Zajdel
机构
[1] Wrocław University of Environmental and Life Sciences,Institute of Geodesy and Geoinformatics
来源
Journal of Geodesy | 2019年 / 93卷
关键词
Multi-GNSS; SLR; Precise Orbit Determination; GLONASS; Galileo; BeiDou; QZSS;
D O I
暂无
中图分类号
学科分类号
摘要
Galileo, BeiDou, QZSS, and NavIC are emerging global navigation satellite systems (GNSSs) and regional navigation satellite systems all of which are equipped with laser retroreflector arrays for range measurements. This paper summarizes the GNSS-intensive tracking campaigns conducted by the International Laser Ranging Service and provides results from multi-GNSS orbit determination using solely SLR observations. We consider the whole constellation of GLONASS, all active Galileo, four BeiDou satellites: 1 MEO, 3 IGSO, and one QZSS. We analyze the influence of the number of SLR observations on the quality of the 3-day multi-GNSS orbit solution. About 60 SLR observations are needed for obtaining MEO orbits of sufficient quality with the root mean square (RMS) of 3 cm for the radial component when compared to microwave-based orbits. From the analysis of a minimum number of tracking stations, when considering the 3-day arcs, 5 SLR stations do not provide a sufficient geometry of observations. The solution obtained using ten stations is characterized with RMS of 4, 9, and 18 cm in the radial, along-track, and cross-track direction, respectively, for MEO satellites. We also investigate the impact of the length of orbital arc on the quality of SLR-derived orbits. Hence, 5- and 7-day arcs constitute the best solution, whereas 3-day arcs are of inferior quality due to an insufficient number of SLR observations and 9-day arcs deteriorate the along-track component. The median RMS from the comparison between 7-day orbital arcs determined using SLR data with microwave-based orbits assumes values in the range of 3–4, 11–16, and 15–27 cm in radial, along-track, and cross-track, respectively, for MEO satellites. BeiDou IGSO and QZSS are characterized by RMS values higher by a factor of 8 and 24, respectively, than MEO orbits.
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页码:2447 / 2463
页数:16
相关论文
共 166 条
[1]  
Altamimi Z(2016)ITRF2014: a new release of the international terrestrial reference frame modeling nonlinear station motions J Geophys Res Solid Earth 121 6109-6131
[2]  
Rebischung P(2016)Assessment of the accuracy of global geodetic satellite laser ranging observations and estimated impact on ITRF scale: estimation of systematic errors in LAGEOS observations 1993–2014 J Geod 90 1371-1388
[3]  
Metivier L(2015)CODEs new solar radiation pressure model for GNSS orbit determination J Geod 89 775-791
[4]  
Xavier C(1994)Extended orbit modeling techniques at the CODE processing center of the international GPS service for geodynamics (IGS): theory and initial results Manuscr Geod 19 367-386
[5]  
Appleby G(2015)Second-degree Stokes coefficients from multi-satellite SLR J Geod 89 857-871
[6]  
Rodrguez J(2017)The unexpected signal in GRACE estimates of C20 J Geod 97 897-914
[7]  
Altamimi Z(2015)Test of the gravitational redshift with stable clocks in eccentric orbits: application to Galileo satellites 5 and 6 Class Quantum Gravity 32 232003-198
[8]  
Arnold D(2009)The international GNSS service in a changing landscape of global navigation satellite systems J Geod 83 191-642
[9]  
Meindl M(2014)Homogeneous reprocessing of GPS, GLONASS and SLR observations J Geod 88 625-25
[10]  
Beutler G(2015)Galileo orbit determination using combined GNSS and SLR observations GPS Solut 19 15-378