Geocenter variations derived from a combined processing of LEO- and ground-based GPS observations

被引:0
作者
Benjamin Männel
Markus Rothacher
机构
[1] Institute of Geodesy and Photogrammetry,
[2] ETH Zurich,undefined
[3] Deutsches GeoForschungsZentrum GFZ,undefined
[4] Telegrafenberg,undefined
来源
Journal of Geodesy | 2017年 / 91卷
关键词
GPS; GRACE; GOCE; OSTM/Jason-2; Geocenter; LEO orbit determination;
D O I
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中图分类号
学科分类号
摘要
GNSS observations provided by the global tracking network of the International GNSS Service (IGS, Dow et al. in J Geod 83(3):191–198, 2009) play an important role in the realization of a unique terrestrial reference frame that is accurate enough to allow a detailed monitoring of the Earth’s system. Combining these ground-based data with GPS observations tracked by high-quality dual-frequency receivers on-board low earth orbiters (LEOs) is a promising way to further improve the realization of the terrestrial reference frame and the estimation of geocenter coordinates, GPS satellite orbits and Earth rotation parameters. To assess the scope of the improvement on the geocenter coordinates, we processed a network of 53 globally distributed and stable IGS stations together with four LEOs (GRACE-A, GRACE-B, OSTM/Jason-2 and GOCE) over a time interval of 3 years (2010–2012). To ensure fully consistent solutions, the zero-difference phase observations of the ground stations and LEOs were processed in a common least-squares adjustment, estimating all the relevant parameters such as GPS and LEO orbits, station coordinates, Earth rotation parameters and geocenter motion. We present the significant impact of the individual LEO and a combination of all four LEOs on the geocenter coordinates. The formal errors are reduced by around 20% due to the inclusion of one LEO into the ground-only solution, while in a solution with four LEOs LEO-specific characteristics are significantly reduced. We compare the derived geocenter coordinates w.r.t. LAGEOS results and external solutions based on GPS and SLR data. We found good agreement in the amplitudes of all components; however, the phases in x- and z-direction do not agree well.
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页码:933 / 944
页数:11
相关论文
共 189 条
  • [1] Altamimi Z(2011)ITRF2008: an improved solution of the international terrestrial reference frame J Geod 85 457-473
  • [2] Collilieux X(2015)Code’s new solar radiation pressure model for gnss orbit determination J Geod 89 775-791
  • [3] Métivier L(2001)A new global mode of earth deformation: seasonal cycle detected Science 294 2342-2345
  • [4] Arnold D(2014)GOCE: precise orbit determination for the entire mission J Geod 88 1047-1060
  • [5] Meindl M(2011)Impact of GPS antenna phase center variations on precise orbits of the GOCE satellite Adv Space Res 47 1885-1893
  • [6] Beutler G(2006)Troposphere mapping functions for GPS and VLBI from European Centre for medium-range weather forecasts operational analysis data J Geophy Res 111 B02406-418
  • [7] Dach R(2010)Precise orbit determination standards for the Jason series of altimeter missions Mar Geod 33 379-20502
  • [8] Schaer S(1997)Effects of atmospheric azimuthal asymmetry on the analysis of space geodetic data J Geophy Res 102 20489-366
  • [9] Lutz S(2009)GNSS processing at CODE: status report J Geod 83 353-198
  • [10] Prange L(2003)Origin of the international terrestrial reference frame J Geophys Res 83 191-758