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首页> 外文期刊>Microgravity science and technology >Relativistic Evaluation Models of Laser Time Transfer between Satellites Resulting from Orbit Perturbations and Attitude Jitters
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Relativistic Evaluation Models of Laser Time Transfer between Satellites Resulting from Orbit Perturbations and Attitude Jitters

机译:由轨道扰动和态度乱七八糟的卫星激光时间转移的相对论评价模型

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摘要

The realization of picosecond level laser time transfer between satellites plays a key role in microgravity scientific missions, such as gravitational wave detection, next generation GNSS (Global Navigation Satellite System), deep space exploration, testing general relativity and searching for dark matter. In picosecond or higher level, a deep insight of relativistic error of laser time transfer between satellites induced by orbit perturbations and attitude jitters is urgently needed, which contributes to the compensation of relativistic error. Firstly, this paper points out the problem of orbit perturbations and attitude jitters. Then, the relativistic evaluation models of one-way laser time transfer and two-way laser time transfer resulting from orbit perturbations and attitude jitters are investigated. The relativistic evaluation models are proposed with incorporation of attitude dynamics and orbit dynamics of satellites, as well as relativistic models of one-way laser time transfer and two-way laser time transfer. Simulation studies are carried out to analyze the effect of orbit perturbations and attitude jitters on the relativistic error. Simulation results show that the relativistic error induced by orbit perturbations increases with time and the relativistic error induced by attitude jitters displays periodic variation. Furthermore, the relativistic error of two-way laser time transfer is less than one-way laser time transfer.
机译:卫星之间的皮秒级激光时间转移的实现在微匍匐科学任务中起着关键作用,例如引力波检测,下一代GNSS(全球导航卫星系统),深空探索,测试一般相对性和搜索暗物质。在PICOSECOND或更高水平中,迫切需要在轨道扰动和态度钝腹部诱导的卫星之间激光时间转移的相对论误差的深刻识别,这有助于补偿相对论误差。首先,本文指出了轨道扰动和态度乱七八糟的问题。然后,研究了单向激光时间转移和由轨道扰动和姿态钝化引起的单向激光时间转移和双向激光时间转移的相对论评估模型。相应的评估模型提出了一种卫星态度动态和轨道动力学,以及单向激光时间转移和双向激光时间转移的相对论模型。进行了仿真研究,以分析轨道扰动和态度麻烦对相对论误差的影响。仿真结果表明,轨道扰动引起的相对论误差随着时间的推移而增加,姿态简洁诱导的相对论误差显示周期性变化。此外,双向激光时间传输的相对论误差小于单向激光时间转移。

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