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Combination Analysis of Future Polar-Type Gravity Mission and GRACE Follow-On

机译:未来的极地重力任务与GRACE跟踪相结合的分析

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Thanks to the unprecedented success of Gravity Recovery and Climate Experiment (GRACE), its successive mission GRACE Follow-On (GFO) has been in orbit since May 2018 to continue measuring the Earth’s mass transport. In order to possibly enhance GFO in terms of mass transport estimates, four orbit configurations of future polar-type gravity mission (FPG) (with the same payload accuracy and orbit parameters as GRACE, but differing in orbit inclination) are investigated by full-scale simulations in both standalone and jointly with GFO. The results demonstrate that the retrograde orbit modes used in FPG are generally superior to prograde in terms of gravity field estimation in the case of a joint GFO configuration. Considering the FPG’s independent capability, the orbit configurations with 89- and 91-degree inclinations (namely FPG-89 and FPG-91) are further analyzed by joint GFO monthly gravity field models over the period of one-year. Our analyses show that the FPG-91 basically outperforms the FPG-89 in mass change estimates, especially at the medium- and low-latitude regions. Compared to GFO & FPG-89, about 22% noise reduction over the ocean area and 17% over land areas are achieved by the GFO & FPG-91 combined model. Therefore, the FPG-91 is worthy to be recommended for the further orbit design of FPGs.
机译:由于重力恢复和气候实验(GRACE)取得了空前的成功,其连续任务GRACE后续行动(GFO)自2018年5月以来一直在轨道上,以继续测量地球的大众运输。为了在运输量估计方面提高GFO,对未来极地重力飞行任务(FPG)的四种轨道配置(有效载荷精度和轨道参数与GRACE相同,但轨道倾角不同)进行了全面研究独立和与GFO一起进行仿真。结果表明,在联合GFO构造的情况下,FPG中使用的逆行轨道模式通常在重力场估计方面优于顺行轨道。考虑到FPG的独立能力,通过联合GFO每月重力场模型在一年的时间内进一步分析了89度和91度倾斜的轨道配置(即FPG-89和FPG-91)。我们的分析表明,FPG-91在质量变化估计上基本上优于FPG-89,特别是在中纬度和低纬度地区。与GFO和FPG-89相比,GFO和FPG-91组合模型在海洋区域的噪音降低了约22%,在陆地区域的噪音降低了17%。因此,FPG-91值得推荐用于FPG的进一步轨道设计。

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