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首页> 外文期刊>Journal of Spacecraft and Rockets >Using Satellite Constellations for Improved Determination of Earth's Time-Variable Gravity
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Using Satellite Constellations for Improved Determination of Earth's Time-Variable Gravity

机译:使用卫星星座来改进确定地球随时间变化的重力

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The spatiotemporal resolution of the time-variable gravity field models derived from current dedicated gravity field missions is inherently limited by their ground-track coverage. Furthermore, the results are subject to aliasing effects caused by submonthly mass transport signals, such as those caused by atmospheric and ocean processes. To address these issues, this study explores the feasibility of using nondedicated satellite constellations, such as those from commercial communication networks or a low-cost array of custom-built microsatellites, as a complementary data source. The positioning receivers onboard the constellation's satellites would ideally provide a high density of observations in the form of derived accelerations that, while much less accurate than those obtained from dedicated gravity missions, are still sufficient to observe the longest wavelength gravity signals at even subdaily intervals. Using a series of simulated mission scenarios, as well as a limited amount of real-data analysis, it is shown that such constellations, acting either independently or when combined with dedicated gravity field missions, may offer a noticeable improvement in the recovery of the large-scale (greater than 1000 km) high-frequency (less than 1 month) components of the global gravity field.
机译:从当前的专用重力场任务获得的时变重力场模型的时空分辨率固有地受到其地面轨道覆盖的限制。此外,结果受月度传质信号(例如由大气和海洋过程引起的信号)引起的混叠效应的影响。为了解决这些问题,本研究探索了使用非专用卫星星座(例如来自商业通信网络或低成本定制微卫星阵列的星座)作为补充数据源的可行性。理想情况下,星座卫星上的定位接收器将以推导加速度的形式提供高密度的观测结果,尽管其精确度要比从专用重力任务获得的加速度要低得多,但仍然足以以甚至每天一次的间隔观测最长的波长重力信号。使用一系列模拟任务场景以及有限量的实际数据分析,结果表明,独立运行或与专门的重力野外任务结合使用时,这种星座可能会在大型机的恢复方面提供显着的改进。全球重力场的高比例(大于1000 km)高频(小于1个月)分量。

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