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Impact of atmospheric anisoplanaticity on earth-to-satellite time transfer over laser communication links

机译:大气各向异性对激光通信链路上地球到卫星时间传输的影响

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The need for an accurate time and position reference on orbiting platforms motivates the study of time transfer over satellite optical communication links. The transfer of precise optical clock signals to space would benefit many fields in fundamental science and applications. However, the precise role of atmospheric turbulence during the optical time transfer process is not well-known and documented. In free-space optical links, atmospheric turbulence represents a major impairment, since it causes degradation of the spatial and temporal coherence of the optical signals. We present possible link scenarios in which the atmospheric channel behavior for time transfer between ground and space can be investigated, and have identified the major challenges to be overcome. We found in our analysis that, despite the limited reciprocity in uplink and downlink propagation, partial two-way cancellation of atmospheric effects still occurs. We established that laser communication links make possible high-quality time transfer in most practical propagation scenarios and over a single satellite visibility period. Our results demonstrate that sharing of optical communication resources for optical time transfer and range determination is an effective and relevant scheme for space clock developments and enabling for future space missions.
机译:在轨道平台上对准确的时间和位置参考的需求激发了对通过卫星光通信链路进行时间传输的研究。将精确的光学时钟信号传输到太空将使基础科学和应用的许多领域受益。但是,大气湍流在光学时间传递过程中的确切作用尚不为人所知并有文献记载。在自由空间光链路中,大气湍流是主要的损害,因为它会导致光信号的空间和时间相干性下降。我们提出了可能的链接方案,其中可以研究大气通道在地面和空间之间的时间转移行为,并确定了需要克服的主要挑战。我们在分析中发现,尽管上行链路和下行链路传播的互易性有限,但仍会发生部分双向抵消大气效应的情况。我们建立了激光通信链路,可以在大多数实际的传播情况下以及单个卫星可见光周期内进行高质量的时间传输。我们的结果表明,共享用于光时间传输和范围确定的光通信资源是一种有效且相关的方案,可用于开发太空时钟并支持未来的太空飞行任务。

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