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基于QPD的PAT系统中根据入射光束尺寸提高跟踪效率,用于基于公共路径的全双工自由空间光通信终端

Tracking Efficiency Improvement According to Incident Beam Size in QPD-Based PAT System for Common Path-Based Full-Duplex FSO Terminals.

作者信息

Park Siwoong, Yeo Chan Il, Heo Young Soon, Ryu Ji Hyoung, Kang Hyun Seo, Lee Dong-Seon, Jang Jae-Hyung

机构信息

School of Electrical Engineering and Computer Science, Gwangju Institute of Science and Technology, 123 Cheomdangwagi-ro, Buk-gu, Gwangju 61005, Korea.

Honam Research Center, Electronics and Telecommunications of Research Institute, 176-11 Cheomdan, Gwagi-ro, Buk-gu, Gwangju 61012, Korea.

出版信息

Sensors (Basel). 2022 Oct 13;22(20):7770. doi: 10.3390/s22207770.

Abstract

Free space optical (FSO) communication can support various unmanned aerial vehicles' (UAVs) applications that require large capacity data transmission. In order to perform FSO communication between two terminals, it is essential to employ a pointing, acquisition, and tracking (PAT) system with an efficient and optimal performance. We report on the development of a common optical-path-based FSO communication system, tailored for applications in UAVs. The proposed system is equipped with a quadrant photodiode (QPD)-based PAT system without an additional beacon beam subsystem. The presented approach reduced the structural complexity and improved the tracking efficiency for the same size, weight, and power (SWaP). To achieve a robust FSO link in a dynamic UAV environment, the observability and controllability were obtained based on the linearized control according to the incident beam size on the QPD, which was verified by optical simulation and experiments. As a result, the QPD-based PAT system for implementing FSO links demonstrated an up to 4.25 times faster tracking performance. Moreover, the FSO link experimentally confirmed the 1.25 Gbps full-duplex error-free communication at a 50 m distance.

摘要

自由空间光(FSO)通信可以支持各种需要大容量数据传输的无人机(UAV)应用。为了在两个终端之间进行FSO通信,采用具有高效和最优性能的指向、捕获和跟踪(PAT)系统至关重要。我们报告了一种专为无人机应用量身定制的基于公共光路的FSO通信系统的开发情况。所提出的系统配备了基于象限光电二极管(QPD)的PAT系统,无需额外的信标光束子系统。所提出的方法降低了结构复杂性,并在相同的尺寸、重量和功率(SWaP)条件下提高了跟踪效率。为了在动态无人机环境中实现稳健的FSO链路,根据QPD上的入射光束大小,基于线性化控制获得了可观测性和可控性,并通过光学仿真和实验进行了验证。结果,用于实现FSO链路的基于QPD的PAT系统展示了高达4.25倍的更快跟踪性能。此外,FSO链路通过实验证实了在50米距离处实现1.25 Gbps全双工无差错通信。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b45b/9610918/fd8c9003b856/sensors-22-07770-g001.jpg

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