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High-bandwidth fine tracking system for optical communication with double closed-loop control method

机译:采用双闭环控制方法的光通信高带宽精细跟踪系统

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摘要

A fine tracking system is crucial for maintaining the accuracy of the optical communication terminals that aim at each other. To ensure the reliability of the communication link, the fine tracking system requires high bandwidth to mitigate the effect of arrival angle fluctuation caused by atmospheric turbulence. Traditionally, the fine tracking system includes only a single feedback loop; a high bandwidth is obtained by increasing the high gain of the fine tracking system, which usually suffers considerably from the time delay engendered by sampling and data processing, the hysteresis nonlinearity of a fast steering mirror (FSM), and the limitations of dynamic response of FSM. To track the beacon in real time and with high precision, a pioneering control method is presented in our paper, namely, double closed-loop control (DCC), which performs better in a tracking system compared with a traditional single-feedback loop. In the inner feedback loop, the response of FSM is measured by a strain gauge sensor (SGS) and used as the inner feedback signal. Thus, by co-operating with the outer CCD-based feedback loop, a DCC scheme is proposed for the fine tracking system. With the SGS signal, the inner loop controller is designed to obtain a rapid response without overshooting; meanwhile, the hysteresis nonlinearity is diminished. Experimental results indicate that the static hysteresis nonlinearity of FSM is reduced from 15.6% to 1.4% by an inner feedback loop, and the dynamic response and stability of FSM is greatly improved, thereby simplifying the outer loop controller design. Then, with the SGS signal, the time delay of the outer loop can be compensated accurately with a predicted signal compensation method. The experimental results show that the -3 dB error rejection bandwidth is increased from 76 to 85 Hz, and the coupling efficiency in our optical communication system is improved by 16.87% after using the DCC fine tracking method. These results indicate that the DCC method can effectively achieve the goal of fast and accurate tracking for optical communications systems.
机译:精细跟踪系统对于维持彼此瞄准的光通信终端的准确性至关重要。为了确保通信链路的可靠性,精细跟踪系统需要高带宽以减轻由大气湍流引起的到达角波动的影响。传统上,精细跟踪系统仅包含一个反馈回路;通过增加精细跟踪系统的高增益可以获得高带宽,通常会受到采样和数据处理带来的时间延迟,快速转向镜(FSM)的磁滞非线性以及动态响应限制的困扰。 FSM。为了实时,高精度地跟踪信标,本文提出了一种开创性的控制方法,即双闭环控制(DCC),与传统的单反馈环相比,双闭环控制(DCC)在跟踪系统中表现更好。在内部反馈回路中,FSM的响应由应变仪传感器(SGS)测量,并用作内部反馈信号。因此,通过与基于外部CCD的反馈回路配合,提出了一种用于精细跟踪系统的DCC方案。借助SGS信号,内环控制器旨在获得快速响应而不会出现过冲。同时,减少了磁滞非线性。实验结果表明,内反馈环使FSM的静态磁滞非线性从15.6%降低到1.4%,FSM的动态响应和稳定性大大提高,从而简化了外环控制器的设计。然后,利用SGS信号,可以使用预测信号补偿方法精确地补偿外环的时间延迟。实验结果表明,使用DCC精细跟踪方法后,-3 dB的误码抑制带宽从76 Hz增加到85 Hz,并且在我们的光通信系统中,耦合效率提高了16.87%。这些结果表明,DCC方法可以有效地实现对光通信系统进行快速准确跟踪的目标。

著录项

  • 来源
    《Optical engineering》 |2019年第2期|026102.1-026102.7|共7页
  • 作者单位

    Chinese Academy of Sciences, Changchun Institute of Optics, Fine Mechanics and Physics, State Key Laboratory of Applied Optics, Changchun, China,University of Chinese Academy of Sciences, Beijing, China;

    Chinese Academy of Sciences, Changchun Institute of Optics, Fine Mechanics and Physics, State Key Laboratory of Applied Optics, Changchun, China;

    Chinese Academy of Sciences, Changchun Institute of Optics, Fine Mechanics and Physics, State Key Laboratory of Applied Optics, Changchun, China,University of Chinese Academy of Sciences, Beijing, China;

    Chinese Academy of Sciences, Changchun Institute of Optics, Fine Mechanics and Physics, State Key Laboratory of Applied Optics, Changchun, China,University of Chinese Academy of Sciences, Beijing, China;

    Chinese Academy of Sciences, Changchun Institute of Optics, Fine Mechanics and Physics, State Key Laboratory of Applied Optics, Changchun, China;

    Chinese Academy of Sciences, Changchun Institute of Optics, Fine Mechanics and Physics, State Key Laboratory of Applied Optics, Changchun, China;

    Chinese Academy of Sciences, Changchun Institute of Optics, Fine Mechanics and Physics, State Key Laboratory of Applied Optics, Changchun, China;

    Chinese Academy of Sciences, Changchun Institute of Optics, Fine Mechanics and Physics, State Key Laboratory of Applied Optics, Changchun, China;

    Chinese Academy of Sciences, Changchun Institute of Optics, Fine Mechanics and Physics, State Key Laboratory of Applied Optics, Changchun, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    fine tracking system; atmospheric correction; optical communication; control bandwidth;

    机译:精细跟踪系统;大气校正光通信;控制带宽;

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