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首页> 外文期刊>Journal of Geodesy >Galileo precise orbit determination with optical two-way links (OTWL): a continuous wave laser ranging and time transfer concept
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Galileo precise orbit determination with optical two-way links (OTWL): a continuous wave laser ranging and time transfer concept

机译:伽利略精确轨道测定光学双向链路(OTWL):连续波激光测距和时间转移概念

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摘要

In this simulation study we analyze the benefit of ground-space optical two-way links (OTWL) for Galileo precise orbit determination (POD). OTWL is a concept based on continuous wave laser ranging and time transfer with modulated signals from and to ground stations. The measurements are in addition to Global Navigation Satellite System (GNSS) observations. We simulate the measurements with regard to 16 Galileo Sensor Stations. In the simulation study we assume that the whole Galileo satellite constellation is equipped with terminals for OTWL. Using OTWL together with Galileo L-band, in comparison with an orbit solution calculated with L-band-only, demonstrates the advantage of combining two ranging techniques with different influences of systematic errors. The two-way link allows a station and satellite clock synchronization. Furthermore, we compare the ground-space concept with the satellite-to-satellite counterpart known as optical two-way inter-satellite links (OISL). The advantage of OTWL is the connection between the satellite system and the solid Earth as well as the possibility to synchronize the satellite clocks and the ground station clocks. The full network, using all three observation types in combination is simulated as well. The possibility to estimate additional solar radiation pressure (SRP) parameters within these combinations is a clear benefit of these additional links. We paid great attention to simulate systematic effects of all observation techniques as realistically as possible. For L-band these are measurement noise, tropospheric delays, phase center variation of receiver and transmitter antennas, constant and variable biases as well as multipath. For optical links we simulated colored and distance-dependent noise, offsets due to the link repeatability and offsets related to the equipment calibration quality. In addition, we added a troposphere error for the OTWL measurements. We discuss the influence on the formal orbit uncertainties and the effects of the systematic errors. Restrictions due to weather conditions are addressed as well. OTWL is synergetic with the other measurement techniques like OISL and can be used for data transfer and communication, respectively.
机译:在该模拟研究中,我们分析了伽利略精确轨道测定(POD)的地面空间光学双向链路(OTWL)的益处。 OTWL是一种基于连续波激光测距和时间转移的概念,其与来自地面站的调制信号。测量除了全球导航卫星系统(GNSS)观察外。我们模拟了16个伽利略传感器站的测量。在模拟研究中,我们假设整个伽利略卫星星座配有OTWL的终端。与伽利略L频段一起使用OTWL,与仅利带计算的轨道解决方案相比,表明了与系统误差不同影响的两个测距技术相结合的优点。双向链路允许站和卫星时钟同步。此外,我们将地面空间概念与卫星到卫星对手进行比较,称为光学双向卫星间链路(OISL)。 OTWL的优点是卫星系统和固体地球之间的连接,以及使卫星时钟和地面站点同步的可能性。也可以模拟使用所有三种观察类型的完整网络。在这些组合中估计额外的太阳辐射压力(SRP)参数的可能性是这些附加链路的明显益处。我们非常重视尽可能现实地模拟所有观察技术的系统效果。对于L波段,这些是测量噪声,对流层延迟,接收器和发射器天线的相位中心变化,恒定和可变的偏差以及多径。对于光链路,我们模拟着色和距离依赖性噪声,由于与设备校准质量相关的链路重复性和偏移而导致的偏移。此外,我们为OTWL测量添加了对流层误差。我们讨论了对正式轨道不确定性的影响和系统错误的影响。由于天气状况而受到限制也得到了解决。 OTWL是与OISL等其他测量技术的协同作用,并且可以分别用于数据传输和通信。

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