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Simulation study of an adaptive phase alignment system for optical heterodyne communications under misalignment conditions

机译:失调条件下光学外差通信的自适应相位对准系统的仿真研究

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摘要

A postphotodetection adaptive phase alignment system using an aperture array of photodetectors is presented to reduce the signal loss in an optical (free-space) heterodyne receiver resulting from wavefront misalignment (tilt) on a satellite platform. This paper compares two kinds of rectangular aperture configurations-full aperture and array aperture configurations-via a software simulation study of the error performance after DPSK demodulation for different angles of arrival (tilt) of the received signal wavefront. For the array configuration, an adaptive phase alignment system is used that phase aligns the signals from the different photodetector array elements, and constructively adds them to yield a higher signal magnitude as compared to that of signal of a single-element photodetector of the same total area. The optimum aperture length for a given wavefront misalignment is derived, and is verified via simulation.
机译:提出了一种使用光检测器的孔径阵列的光检测后自适应相位对准系统,以减少由于卫星平台上的波前未对准(倾斜)而导致的光学(自由空间)外差接收器中的信号损失。本文通过对接收信号波前的不同到达角(倾斜角)进行DPSK解调后的误差性能的软件仿真研究,比较了两种矩形孔径配置(全孔径和阵列孔径配置)。对于阵列配置,使用了自适应相位对准系统,该系统对来自不同光电探测器阵列元件的信号进行相位对准,并相长地相加,以产生比相同总数的单元素光电探测器的信号更高的信号幅度。区域。推导了给定波阵面未对准的最佳孔径长度,并通过仿真进行了验证。

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