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首页> 外文期刊>Applied optics >Level crossing statistics for optical beam wander in a turbulent atmosphere with applications to ground-to-space laser communications
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Level crossing statistics for optical beam wander in a turbulent atmosphere with applications to ground-to-space laser communications

机译:光束在湍流环境中徘徊的平交统计数据在地对空激光通信中的应用

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摘要

Level crossing statistics is applied to the complex problem of atmospheric turbulence-induced beam wander for laser propagation from ground to space. A comprehensive estimate of the single-axis wander angle temporal autocorrelation function and the corresponding power spectrum is used to develop, for the first time to our knowledge, analytic expressions for the mean angular level crossing rate and the mean duration of such crossings. These results are based on an extension and generalization of a previous seminal analysis of the beam wander variance by Klyatskin and Kon. In the geometrical optics limit, we obtain an expression for the beam wander variance that is valid for both an arbitrarily shaped initial beam profile and transmitting aperture. It is shown that beam wander can disrupt bidirectional ground-to-space laser communication systems whose small apertures do not require adaptive optics to deliver uniform beams at their intended target receivers in space. The magnitude and rate of beam wander is estimated for turbulence profiles enveloping some practical laser communication deployment options and suggesting what level of beam wander effects must be mitigated to demonstrate effective bidirectional laser communication systems.
机译:平交统计应用于大气湍流引起的光束漂移的复杂问题,从而使激光从地面传播到太空。据我们所知,单轴漂移角时间自相关函数和相应的功率谱的综合估计首次用于开发平均角度水平交叉速率和此类交叉的平均持续时间的解析表达式。这些结果是基于先前对Klyatskin和Kon进行的光束漂移方差分析的扩展和概括。在几何光学极限中,我们获得了光束漂移方差的表达式,该表达式对于任意形状的初始光束轮廓和透射孔径均有效。结果表明,光束漂移会破坏双向地对空激光通信系统,该系统的小孔径不需要自适应光学器件即可在空间中的目标接收器处发射均匀的光束。估计湍流轮廓的光束漂移的幅度和速率,以包围一些实际的激光通信部署选项,并提出必须减轻何种水平的光束漂移效应才能证明有效的双向激光通信系统。

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