首页> 外文期刊>Surveys in Geophysics: An International Review Journal of Geophysics and Planetary Sciences >Global and Regional Gravity Field Determination from GOCE Kinematic Orbit by Means of Spherical Radial Basis Functions
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Global and Regional Gravity Field Determination from GOCE Kinematic Orbit by Means of Spherical Radial Basis Functions

机译:利用球面径向基函数从GOCE运动轨道确定全局和区域重力场

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We present global and regional gravity field models to degree 130 based on the GOCE kinematic orbit from the period 01 November 2009 to 11 January 2010. The gravity field models are parameterized in terms of the Shannon and Kaula's spherical radial basis functions. The relation between the unknown expansion coefficients and the kinematic orbit of the satellite is established by the acceleration approach. We show that our global GOCE-only solutions free from prior information can compete with unconstrained spherical harmonic models in terms of accuracy. Furthermore, we utilize our low-degree global GOCE-based models to introduce prior information into the least-squares adjustment. This procedure substantially improves the zonal and near-zonal spherical harmonic coefficients, which are usually degraded due to the polar gap problem. As an unwanted side effect, low-pass filtering of the geopotential may occur, but this can be adjusted by the spectral content of the prior information. We show that the regional enhancement of the global solutions reduces noise in the final model between degrees 70 and 130 by 10 % in terms of RMS error. In general, our Shannon-based solutions systematically outperform the Kaula-based ones. To validate our results, we use the EIGEN-6S model, which is superior to the solutions from kinematic orbits at least by one order of magnitude. Both the global and the regional models satisfy the GOCE-only strategy.
机译:我们基于2009年11月1日至2010年1月11日期间的GOCE运动轨道,提出了130度的全球和区域重力场模型。根据Shannon和Kaula的球面径向基函数对重力场模型进行了参数化。未知膨胀系数与卫星运动轨道之间的关系是通过加速方法建立的。我们证明,我们的全球GOCE专用解决方案没有先验信息,可以在精度方面与不受约束的球谐模型竞争。此外,我们利用基于全球GOCE的低阶模型将先验信息引入最小二乘平差。该程序极大地改善了区域和近区域的球谐系数,通常由于极隙问题而使它们退化。作为有害的副作用,可能会发生对地电势的低通滤波,但这可以通过先验信息的频谱内容进行调整。我们显示,全局解决方案的区域增强将最终模型中的噪声降低了RMS误差的10%(介于70度和130度之间)。一般而言,我们基于香农的解决方案在系统上胜过基于考拉的解决方案。为了验证我们的结果,我们使用了EIGEN-6S模型,该模型比运动轨道的解决方案至少好一个数量级。全局和区域模型都满足GOCE-only战略。

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