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Impact of regional reference frame definition on geodynamic interpretations

机译:区域参考系定义对地球动力学解释的影响

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摘要

Ten years (1997-2006) of weekly GNSS solutions of 205 globally distributed stations have been used to investigate the impact of the reference frame definition on the estimated station velocities. For that purpose, weekly regional solutions (covering the European region) and global solutions have been, respectively, stacked to obtain regional and global velocity fields. In both cases, the estimated long-term solutions (station positions and velocities) were tied to the 1TRF2005 under minimal constraints using a selected set of reference stations. Several sets of global and regional reference stations were tested to evaluate first the impact of the reference frame definition on the global and regional velocity fields and later the impact on the derived geodynamic interpretations.rnResults confirm that the regional velocity fields show systematic effects with respect to the global velocity field with differences reaching up to 1.3 mm/year in the horizontal and 2.9 mm/year in the vertical depending on the geographical extent of the network and the chosen set of regional reference stations.rnIn addition, the estimations of the Euler pole for Western Europe differ significantly when considering a global or a regional strategy. After removing the rigid block rotation, the residual velocity fields show differences which can reach up to 0.8 mm/year in horizontal component.rnIn Northern Europe, the vertical ground motion is dominated by the Glacial Isostatic Adjustment (GIA). A proper modeling of this effect requires sub-mm/year precision for the vertical velocities for latitudes below 56°. We demonstrate that a profile of vertical velocities shows significant discrepancies according to the reference frame definition strategy. In the case of regional solutions, the vertical modeling does not predict any subsidence around 52° as predicted by the global solution and previous studies.rnIn summary, we evidence the limitation of regional networks to reconstruct absolute velocity fields and conclude that when geodynamics require the highest precisions for the GNSS-based velocities, a global reference frame definition is more reliable.
机译:十年(1997年至2006年)每周使用205个全球分布式站点的GNSS解决方案来研究参考帧定义对估计站点速度的影响。为此,已经分别堆叠了每周的区域解决方案(覆盖欧洲区域)和全球解决方案,以获得区域和全球速度场。在这两种情况下,使用一组选定的参考站,在最小的约束下,将估计的长期解(站的位置和速度)与1TRF2005绑定。测试了几套全球和区域参考站,以首先评估参考框架定义对全球和区域速度场的影响,然后评估对派生的地球动力学解释的影响。全球速度场,根据网络的地理范围和所选的区域参考站的不同,水平方向的差异最高可达1.3毫米/年,垂直方向的差异高达2.9毫米/年.rn此外,欧拉极的估算在考虑全球或区域战略时,西欧国家的情况差异很大。去除刚性块旋转后,残余速度场显示出水平分量上的差异,最高可达0.8 mm /年。在北欧,垂直地面运动主要由冰川等静压调整(GIA)主导。要对此效应进行适当的建模,对于低于56°的纬度,垂直速度需要达到亚毫米/年的精度。我们证明,根据参考框架定义策略,垂直速度剖面显示出明显的差异。在区域解的情况下,垂直建模不能像整体解和先前的研究预测的那样在52°附近有任何沉降。总之,我们证明了区域网络在重建绝对速度场方面的局限性,并得出结论,当地球动力学需要对于基于GNSS的速度最高的精度,全局参考框架定义更加可靠。

著录项

  • 来源
    《Journal of geodynamics》 |2010年第4期|p.116-122|共7页
  • 作者单位

    Royal Observatory of Belgium, Avenue Circulaire 3, B-1180 Brussels, Belgium;

    Royal Observatory of Belgium, Avenue Circulaire 3, B-1180 Brussels, Belgium;

    Royal Observatory of Belgium, Avenue Circulaire 3, B-1180 Brussels, Belgium;

    UMR LIENSS, Universite de La Rochelle-CNRS, 2 rue Olympe de Gouges, 17000 La Rochelle, France;

    CNRM/Centre de Meteo Marine, 13 rue du Chatellier, 29604 Brest, France;

    IAREG/IGN, 6-8 Avenue Blaise Pascal, 77455 Marne-la-Vallee, France;

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

    geodesy; reference frame; methodology; GNSS; velocity field; geodynamic;

    机译:大地测量学参考范围;方法;GNSS;速度场地球动力学;

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