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Research on telescope array for inter-satellites laser communication

机译:卫星激光通信望远镜阵列研究

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Recent years have seen an explosive increase in the application of inter-satellites laser communication system. Considerations make phased arrays an attractive target for optical communication applications. This paper proposes a novel telescope array for inter-satellites laser communication and investigates phased telescope arrays to be employed in receive terminals of free-space laser inter-satellites communication links. Potential advantages over single monolithic telescopes consist in non-mechanical adaptive fine pointing of the mainlobe and a reduction of terminal volume, mass and cost. First, the basic function, the interfaces, and the performance parameters of one telescope are given. Next, the structure of a receive telescope array are described, and then the performance parameters of this telescope array are discussed. The different performances including antenna gain and pattern of optical antenna and telescope array in inter-satellites laser communication system are given in this part. A quantitative assessment reveals that arrays using coaxial beam superposition are best suited for optical data communications. Based on this finding, the main characteristics of superimposing telescope arrays are calculated. And calculations prove that, in practical applications, telescope array has better performance than one telescope used in laser inter-satellites communication, and even more, the influence of incoherent background radiation is negligible. The analyses results show that smart antenna is better than optical antenna in this communication system. In many important aspects of phased array design, we will consider 1) Frequency Synchronization and 2) Beam steering as being of primary importance to the present analysis. Frequency synchronization is necessary for proper beam spatial coherence, while beam steering is critical to how this cohered beam is pointed in a desired direction. We will address system performance and implementation aspects of both issues in fiber optic control. Three basic architecturs for beam steering control via optics have been reported and proposed.
机译:近年来,卫星间激光通信系统的应用爆炸性增加。考虑因素使序列阵列是光通信应用的有吸引力的目标。本文提出了一种用于卫星间激光通信的新颖望远镜阵列,并研究了在自由空间激光卫星间通信链路的接收端子中使用的相控望远镜阵列。单片单片望远镜上的潜在优势在主菜的非机械自适应细微指向和终端体积,质量和成本的降低中组成。首先,给出了一个望远镜的基本功能,接口和性能参数。接下来,描述接收望远镜阵列的结构,然后讨论该望远镜阵列的性能参数。本部分给出了卫星间激光通信系统中的不同性能,包括天线增益和光天线和望远镜阵列的图案。定量评估揭示了使用同轴束叠加叠加的阵列最适合光学数据通信。基于这一发现,计算了叠加望远镜阵列的主要特征。并且计算证明,在实际应用中,望远镜阵列具有比激光卫星间通信中使用的一个望远镜更好的性能,甚至更多,不相间的背景辐射的影响忽略不计。分析结果表明,智能天线比该通信系统中的光天线更好。在分阶段阵列设计的许多重要方面,我们将考虑1)频率同步和2)波束转向作为对本分析的主要重要性。对于适当的光束空间相干性,频率同步是必要的,而光束转向对于如何在所需方向上指向这种相干光束是关键的。我们将解决光纤控制中的两个问题的系统性能和实现方面。报道并提出了通过光学器件进行光束转向控制的三个基本建筑师。

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