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Improved recovery of temporal variations of the Earth's gravity field from satellite kinematic orbits using an epoch-difference scheme

机译:利用跨差分方案改善了从卫星运动轨道的地球重力场的时间变化的恢复

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To monitor temporal variations of the Earth's gravity field and mass transport in the Earth's system, data from gravity recovery and climate experiment (GRACE) satellite mission and its successor GRACE Follow-On (GFO) are used. To fill in the temporal gap between these missions, other satellites' kinematic orbits derived from GPS-based high-low satellite-to-satellite tracking data may be considered. However, it is well known that kinematic orbits are highly sensitive to various systematic errors. These errors are responsible for a non-stationary noise in the kinematic orbits, which is difficult to handle. As a result, the quality of the obtained gravity field solutions is reduced. In this research, we propose to apply an epoch-difference (ED) scheme in the context of the classical dynamic approach to gravity field recovery. Compared to the traditional undifferenced (UD) scheme, the ED scheme is able to mitigate constant or slowly varying systematic errors. To demonstrate the added value of the ED scheme, three sets of monthly gravity field solutions produced from 6 years of GRACE kinematic orbits are compared: two sets produced in-house (with the ED and UD scheme), and a set produced with the undifferenced scheme in the frame of the short-arc approach (Zehentner and Mayer-Gurr in J Geodesy 90(3):275-286, 2015. https://doi.org/10.1007/s00190-015-0872-7). As a reference, we use state-of-the-art ITSG-Grace2018 monthly gravity field solutions. A comparison in the spectral domain shows that the gravity field solutions suffer from a lower noise level when the ED scheme is applied, particularly at low-degree terms, with cumulative errors up to degree 20 being reduced by at least 20%. In the spatial domain, the ED scheme notably reduces noise levels in the mass anomalies recovered. In addition, the signals in terms of mean mass anomalies in selected regions become closer to those inferred from ITSG-Grace2018 solutions, while showing no evidence of any damping, when the ED scheme is used. We conclude that the proposed ED scheme is preferable for time-varying gravity field modeling, as compared to the traditional UD scheme. Our findings may facilitate, among others, bridging the gap between GRACE and GFO satellite mission.
机译:为了监测地球的重力场和地球系统中的大众传输的时间变化,使用重力回收和气候实验(Grace)卫星使命及其继任者宽限性后续(GFO)的数据。为了填补这些任务之间的时间间隙,可以考虑来自基于GPS的高低卫星到卫星跟踪数据的其他卫星的运动轨道。然而,众所周知,运动轨道对各种系统误差高度敏感。这些误差负责运动轨道中的非静止噪声,这难以处理。结果,降低了所得重力场溶液的质量。在这项研究中,我们建议在经典动态方法的上下文中施加纪元差(ED)方案,以重力场恢复。与传统的未经定义(UD)方案相比,ED方案能够减轻恒定或缓慢变化的系统错误。为了展示ED方案的附加值,比较了6年的恩典运动轨道的三组每月重力场解决方案:内部生产的两组(具有ED和UD方案),并用未经定义的组短弧方法框架的方案(J Geodesy 90(3)中的Zehentner和Mayer-Gurr - 2015. https://doi.org/10.1007/s00190-015-0872-7)。作为参考,我们使用最先进的ITSG-Grace2018每月重力场解决方案。光谱域中的比较显示,当施加ED方案时,重力场溶液患有较低的噪声水平,特别是在低度术语处,累积误差高达20减小至少20%。在空间域中,ED方案显着降低恢复质量异常中的噪声水平。此外,所选区域中的平均质量异常方面的信号变得更接近于从ITSG-Grace2018解决方案推断的那些,同时在使用ED方案时没有显示任何阻尼的证据。我们得出结论,与传统的UD方案相比,所提出的ED方案优选用于时变的重力场建模。我们的调查结果可能有助于弥合格雷斯和GFO卫星使命之间的差距。

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