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Modeling microphysical influences on optical turbulence

机译:模拟光学湍流的微观影响

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Optical turbulence is important because it can significantly degrade the performance of electro-optical and infrared sensors, such as free-space laser communications and infrared imaging systems. Changes in the refractive index of air along the transmission path of an optical system in free space can influence traveling light waves temporally and spatially causing blurring, scintillation, and bean wander. If left uncompensated, these effects could cause fades and surges in transmitted signals and result in high bit errors in communicated data. An earlier paper discussed the growing need for increasingly accurate and reliable numerical models to predict optical turbulence conditions, especially in complex (non-uniform) signal propagation environments. Hence, we present a finite-difference computer model to predict the microphysical (microclimate) influences on optical turbulence (C_n~2) around the ARL A_LOT Facility and its surroundings, e.g., forests and multiple buildings. Our multi-dimensional prototypical model begins to address optical turbulence conditions along more complex optical lines-of-site and account for inhomogeneities in C_n~2 brought about by horizontal changes in landscape, wind flow, temperature, and humidity. We anticipate that this kind of computational research will be an important vehicle for investigating C_n~2 and related laser-optic propagation effects in complex areas.
机译:光学湍流很重要,因为它可以显着降低电光和红外传感器的性能,例如自由空间激光通信和红外成像系统。沿着自由空间中光学系统的传输路径的空气折射率的变化可以在时间上影响行进光波,并在空间上引起模糊,闪烁和豆漂流动。如果留下未偿定的话,这些效果可能导致传输信号中的渐渐和浪涌,并导致传送数据中的高比特错误。较早的纸张讨论了对日益准确和可靠的数值模型的日益增长的需求,以预测光学湍流条件,尤其是在复杂的(非均匀)信号传播环境中。因此,我们提出了一种有限差异的计算机模型,以预测ARL A_LOT设施及其周围环境周围的光学湍流(C_N〜2)的微神科(微气密)影响,例如森林和多层建筑物。我们的多维原型模型开始沿着更复杂的光学线路沿着现场更复杂的光学湍流条件进行解决,并且通过水平变化在景观,风流量,温度和湿度中的水平变化所带来的C_N〜2中的不均匀性。我们预计这种计算研究将是在复杂区域中调查C_N〜2的重要载体和相关的激光 - 光学传播效应。

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