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Precise real-time navigation of LEO satellites using GNSS broadcast ephemerides

机译:使用GNSS播放星际液晶卫星的精确实时导航

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摘要

The availability of orbit information with high precision and low latency is a key requirement for many Earth-observation missions, predominantly in the field of radio occultation. Traditionally, precise orbit determination solutions of low-Earth orbit (LEO) satellites are obtained offline on ground after downloading GNSS measurements and auxiliary spacecraft data to the processing center. The latency of this processing depends on the frequency of LEO downlink contacts and the availability of precise GNSS orbit and clock products required for the orbit determination process. These dependencies can be removed by computing the precise orbit determination solution on board the satellite using GNSS broadcast ephemerides. In this study, both real data and simulated measurements from a representative LEO satellite are processed in a flight-proven Kalman-filter algorithm. The paper studies the use of GPS, Galileo and BeiDou-3 for real-time orbit determination in different combinations with simulated measurements. Results show that use of dual-frequency observations and broadcast ephemerides of Galileo and BeiDou-3 leads to a significant reduction of 3D rms orbit errors compared to GPS-only processing. An onboard navigation accuracy of about one decimeter can be achieved without external augmentation data, which opens up new prospects for conducting relevant parts of the science data processing in future space missions directly on board a LEO satellite.
机译:具有高精度和低延迟的轨道信息的可用性是许多地球观测任务的关键要求,主要是在无线电掩星领域。传统上,在将GNSS测量和辅助航天器数据下载到加工中心之后,在地面下线下线获得低地轨道(LEO)卫星的精确轨道确定解。该处理的延迟取决于LEO下行链路触点的频率和轨道确定过程所需的精确GNSS轨道和时钟产品的可用性。可以通过使用GNSS广播清醒计算卫星上的精确轨道确定解决方案来消除这些依赖性。在本研究中,在飞行证明的卡尔曼滤波器算法中处理了来自代表Leo卫星的真实数据和模拟测量。本文研究了GPS,Galileo和Beidou-3的使用,以在模拟测量的不同组合中实时轨道测定。结果表明,与唯一的GPS处理相比,使用双频观测和伽利略和北欧-3的明显减少了3D RMS轨道误差的显着减少。在没有外部增强数据的情况下,可以实现约一列电缆的板载导航精度,这为未来的空间任务中的科学数据处理中的相关部分进行了新的前景,直接在Leo卫星上。

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