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Precise orbit determination of high-earth elliptical orbiters using differenced Doppler and ranging measurements

机译:使用差分多普勒和测距法精确确定高地球椭圆轨道器的轨道

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摘要

Recent advances in NASA's Deep Space Network station calibration methods have led to renewed interest in the use of differenced radio metric data types for interplanetary navigation, particularly differenced Doppler and range. An orbit determination error analysis is described which compares the performance of these differenced data types when used in concert with conventional two-way Doppler for precise navigation for high-earth orbiters. Three highly elliptical orbits were investigated, with apogee heights on the order of 20000, 70000, and 156000 km. The analysis assumes that each orbiter's downlink antennas has no ground footprint limitation in the near apogee regime. Results indicate that the most significant navigational accuracy improvements are seen for the lowest altitude orbit by using differenced Doppler measurements in conjunction with two-way Doppler. The results for the two higher-altitude orbits, although less dramatic, suggest accuracy improvements can also be achieved when differenced range measurements are combined with two-way Doppler.
机译:NASA的深空网络站校准方法的最新进展引起了人们对在行星际导航中使用不同的无线电度量数据类型(特别是不同的多普勒和射程)重新产生兴趣。描述了一种轨道确定误差分析,该分析比较了这些差异数据类型与常规双向多普勒仪配合使用时的性能,以实现高地球轨道器的精确导航。研究了三个高椭圆轨道,最高点高度分别为20000、70000和156000 km。该分析假设每个轨道器的下行链路天线在近远地点范围内都没有地面足迹限制。结果表明,通过使用差分多普勒测量与双向多普勒相结合,可以在最低的高度轨道上看到最显着的导航精度改进。两个高空轨道的结果虽然不那么引人注目,但表明当差距测量与双向多普勒相结合时,也可以实现精度的提高。

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