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Beam propagation through atmospheric turbulence using an altitude-dependent structure profile with non-uniformly distributed phase screens

机译:使用高度相关的结构轮廓和不均匀分布的相位屏,通过大气湍流传播光束

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Modeling the effects of atmospheric turbulence on optical beam propagation is a key element in the design and analysis of free-space optical communication systems. Numerical wave optics simulations provide a particularly useful technique for understanding the degradation of the optical field in the receiver plane when the analytical theory is insufficient for characterizing the atmospheric channel. Motivated by such an application, we use a split-step method modeling the turbulence along the propagation path as a series of thin random phase screens with modified von Kantian refractive index statistics using the Hufnagel-Valley turbulence profile to determine the effective structure constant for each screen. In this work, we employ a space-to-ground case study to examine the irradiance and phase statistics for both uniformly and non-uniformly spaced screens along the propagation path and compare to analytical results. We find that better agreement with the analytical theory is obtained using a non-uniform spacing with the effective structure constant for each screen chosen to minimize its contribution to the scintillation in the receiver plane. We evaluate this method as a flexible alternative to other standard layered models used in astronomical imaging applications.
机译:在自由空间光通信系统的设计和分析中,对大气湍流对光束传播的影响进行建模是关键要素。当分析理论不足以表征大气通道时,数值波光学模拟提供了一种特别有用的技术,可用于理解接收器平面中光场的退化。出于这种应用的动机,我们使用分步方法对沿传播路径的湍流进行建模,将其作为一系列薄的随机相位筛网,并使用Hufnagel-Valley湍流剖面修改了冯·康定折射率统计数据,以确定每种结构的有效结构常数屏幕。在这项工作中,我们采用了一个空对地的案例研究,以检查沿传播路径均匀和不均匀间隔的屏幕的辐照度和相位统计,并与分析结果进行比较。我们发现,使用不均匀的间距和有效的结构常数来获得与分析理论的更好的一致性,对于每个选定的屏幕,其有效结构常数应尽量减少其对接收器平面内闪烁的影响。我们评估此方法作为在天文影像应用中使用的其他标准分层模型的灵活替代方案。

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