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Atmospheric Induced Frequency Fluctuations in LIDAR

机译:激光雷达中的大气感应频率波动

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It is well known that the transmission of an optical signal through the turbulent atmosphere results in random phase fluctuations. In turn, these random phase fluctuations impart a random frequency fluctuation onto the optical signal. As laser radar (lidar) systems rely on the evaluation of micro-Doppler frequency shifts of the reflected optical wave to determine certain target characteristics, it is critical to understand the impact of the atmospheric induced frequency fluctuations. Additionally, lidar systems used for defense applications would typically operate in moderate to strong atmospheric turbulence conditions. Hence, for such applications, it is necessary to develop models describing atmospheric induced frequency fluctuations of an optical wave that are valid in all regimes of optical turbulence. In this paper, we present preliminary results for a model of atmospheric induced frequency fluctuations for the double pass propagation problem in weak optical turbulence conditions and a possible method for extension of these results into moderate to strong turbulence conditions.
机译:众所周知,通过湍流的光信号传输会导致随机的相位波动。这些随机相位波动又将随机频率波动赋予光信号。由于激光雷达(激光雷达)系统依赖于反射光波的微多普勒频移评估来确定某些目标特性,因此了解大气感应频率波动的影响至关重要。另外,用于国防应用的激光雷达系统通常将在中等到强烈的大气湍流条件下运行。因此,对于这样的应用,有必要开发描述在光学湍流的所有状态下均有效的描述光的大气感应频率波动的模型。在本文中,我们给出了在弱光学湍流条件下双程传播问题的大气感应频率波动模型的初步结果,以及将这些结果扩展为中度到强湍流条件的可能方法。

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