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Refractive Effects, Turbulence, and the EOSTAR model

机译:折射效果,湍流和EOSTAR模型

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摘要

An infrared signal or a laser beam propagating along a horizontal near-surface path will encounter substantial perturbations. The fluxes of momentum and heat near the surface are relatively large, and these in turn cause large changes in the propagated intensity, direction, and coherence. It is important to be able to accurately model the separate effects that generate changes in a propagated beam, and it is also important to combine the different factors accurately. We will present some evidence from field experiments to demonstrate how refractivity changes on a ten-minute scale are manifested in a recorded infrared transmission signal. The EOSTAR (Electro-Optical Signal Transmission and Ranging) model is used to provide performance predictions for the experimental work. The EOSTAR model is built upon a geometrical optics approach to infrared propagation: a ray is traced through the propagation environment, and path-dependent perturbations to the signal can be determined. The primary computational tool for analysis of refractive effects in the EOSTAR model is a geometrical optics module that produces a ray-trace calculation for a given refractive environment. Based on the vertical profiles of temperature, humidity, refractive index structure parameter, and the calculated ray trajectories, EOSTAR calculates the path-integrated and spectrally-resolved transmission, background-radiation and path-radiation, as well as the scintillation and blur for a point source at any range and height position.
机译:沿水平近表面路径传播的红外信号或激光束会遇到较大的干扰。表面附近的动量和热通量相对较大,而这些通量又会导致传播强度,方向和相干性发生较大变化。能够准确地对在传播光束中产生变化的单独效应进行建模很重要,并且准确地组合不同因素也很重要。我们将从现场实验中提供一些证据,以证明在记录的红外传输信号中,十分钟刻度上的折射率变化是如何体现的。 EOSTAR(光电信号传输和测距)模型用于为实验工作提供性能预测。 EOSTAR模型建立在几何光学方法上以进行红外传播:在传播环境中跟踪光线,并可以确定信号的与路径有关的扰动。用于分析EOSTAR模型中的折射效应的主要计算工具是几何光学模块,该模块可为给定的折射环境生成光线跟踪计算。 EOSTAR根据温度,湿度,折射率结构参数和计算的射线轨迹的垂直剖面,计算路径积分和光谱分辨的透射率,背景辐射和路径辐射,以及对物体的闪烁和模糊。点光源在任何范围和高度位置。

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