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Improving the recovery of monthly regional water storage using one year simulated observations of two pairs of GRACE-type satellite gravimetry constellation

机译:使用两对GRACE型卫星重力星座的一年模拟观测结果来提高每月区域水存储量的恢复

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摘要

Increasing the spatial sampling isotropy is a major issue in designing future missions dedicated to continue the task of the Gravity Recovery And Climate Experiment (GRACE) mission. From various possible future satellite gravimetry scenarios, the two-pair multi-orbit satellite configuration (Bender-type in the sequence), consisting of a coupled semi-polar pair (the same as GRACE) and an inclined pair of satellites seems to be an optimal mission choice.ududThis contribution examines the performance of a Bender-type scenario at altitudes of 335 km and 352 km and inclinations of 89° and 63°, respectively, for improving the regional recovery of hydrological signals. To this end, we created one full year of simulated observations of the GRACE and Bender-type configurations. Our investigations include: 1) evaluating the feasible spatial resolution for the recovery of terrestrial water storage (TWS) changes in the presence of realistic instrumental noise and errors in the background models; 2) assessing the influence of aliasing errors in the TWS recovery and its separation from instrumental noise and introduced hydrological signals; and 3) analyzing the regional quality of the gravity-derived TWS results by assessing water storage changes over the 33 world major river basins.ududFrom our simulations, the Bender-derived spectral error curves indicate that, in spite of the instrumental noise, aliasing errors still contaminate the gravity fields above geopotential spherical harmonic coefficient (SHC) degree and order (d/o) 80 till 100. Regarding to the TWS recovery, we found notable improvements for the Bender-type configuration results in medium and small-scale basins, such as the Brahmaputra, Euphrates, Ganges, Indus, Mekong basins in Asia and the Yellow and Orange basins in South Africa. These results were achieved without applying post-processing, which was unachievable using simulations of one pair of GRACE-like configuration. Comparing the magnitudes of errors in the Bender-derived solutions with those of GRACE indicate that the accuracy derived from the Bender-type fields is about two times better than that of GRACE, specifically at medium spatial resolutions of 250 km (SHC d/o 80). We truncated the TWS recovery up to SHC d/o 80 in the spectral domain, whereas all comparisons are demonstrated in the spatial domain after a truncation of the solutions and WGHM field at d/o 60, since beyond this range; a relatively strong instrumental and aliasing errors contaminate the solutions.ududOur numerical results indicate that the spatial resolution of the Bender-type TWS recovery can be even higher for the basins with strong temporal water storage variations such as the Amazon basin. Short wavelength mass variations in basins with relatively weaker temporal TWS magnitude, such as the Murray basin, might still need the application of a filter with small averaging kernel.
机译:在设计未来的任务以继续进行重力恢复和气候实验(GRACE)任务时,增加空间采样各向同性是一个主要问题。从未来各种可能的卫星重力场景中看,两对多轨道卫星配置(序列中的Bender型)由一对耦合的半极性对(与GRACE相同)和一对倾斜的卫星组成,似乎是一种最佳任务选择。 ud ud分别检查了Bender型情景在335 km和352 km的高度以及89°和63°的倾斜度下的性能,以改善水文信号的区域恢复。为此,我们创建了一个全年的GRACE和Bender类型配置的模拟观察结果。我们的研究包括:1)在背景模型中存在实际仪器噪声和误差的情况下,评估用于恢复地面水存储(TWS)变化的可行空间分辨率; 2)评估混叠误差对TWS回收及其与仪器噪声和引入水文信号的分离的影响; 3)通过评估33个世界主要河流流域的储水量变化来分析重力引力波定水结果的区域质量。 ud ud根据我们的模拟,本德尔德光谱误差曲线表明,尽管存在仪器噪声, ,混叠误差仍然会污染重力场,高于80到100。规模盆地,例如亚洲的雅鲁藏布江,幼发拉底河,恒河,印度河,湄公河盆地以及南非的黄色和橙色盆地。这些结果是在不应用后处理的情况下获得的,而后处理是使用一对类似GRACE的配置进行模拟所无法实现的。将Bender派生解的误差幅度与GRACE的误差幅度进行比较,表明从Bender类型场得出的精度大约是GRACE的两倍,特别是在250 km的中等空间分辨率下(SHC d / o 80 )。我们在光谱域中将TWS的回收率截短至SHC d / o 80,而在d / o 60处的溶液和WGHM场被截断后,由于超出了该范围,所有比较都在空间域中得到了证明;相对强的仪器误差和混叠误差污染了解决方案。在时间上TWS幅度相对较弱的盆地(例如Murray盆地)中,短波长质量变化可能仍需要使用平均内核较小的滤波器。

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