A worldwide physics-based high spectral resolution atmospheric characterization and propagation package for UV to RF wavelengths

M. Krizo, S. Cusumano, R. Bartell, Steven T. Fiorino, W. Bailey, Rebecca L. Beauchamp, M. Marciniak, K. P. Moore
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引用次数: 8

Abstract

The Air Force Institute of Technology's Center for Directed Energy (AFIT/CDE) developed the High Energy Laser End-to-End Operational Simulation (HELEEOS) model in part to quantify the performance variance in laser propagation created by the natural environment during dynamic engagements. As such, HELEEOS includes a fast-calculating, first principles, worldwide surface-to-100 km, atmospheric propagation and characterization package. This package enables the creation of profiles of temperature, pressure, water vapor content, optical turbulence, atmospheric particulates and hydrometeors as they relate to line-by-line layer transmission, path and background radiance at wavelengths from the ultraviolet to radio frequencies. Physics-based cloud and precipitation characterizations are coupled with a probability of cloud free line-of-sight algorithm for all possible look angles. HELEEOS was developed under the sponsorship of the High Energy Laser Joint Technology Office. In the current paper an example of a unique high fidelity simulation of a bi-static, time-varying five band multispectral remote observation of laser energy delivered on a test object is presented. The multispectral example emphasizes atmospheric effects using HELEEOS, the interaction of the laser on target and the observed reflectance and subsequent hot spot generated. A model of a sensor suite located on the surface is included to collect the diffuse reflected in-band laser radiation and the emitted radiance of the hot spot in four separate and spatially offset MWIR and LWIR bands. Particular care is taken in modeling the bidirectional reflectivity distribution function (BRDF) of the laser/target interaction to account for both the coupling of energy into the target body and the changes in reflectance as a function of temperature. The architecture supports any platform-target-observer geometry, geographic location, season, and time of day; and it provides for correct contributions of the sky-earth background. The simulation accurately models the thermal response, kinetics, turbulence, base disturbance, diffraction, and signal-to-noise ratios.
一个世界范围内基于物理的高光谱分辨率大气表征和传播包,用于UV到RF波长
美国空军理工学院定向能中心(AFIT/CDE)开发了高能激光端到端作战模拟(HELEEOS)模型,部分目的是量化动态交战期间自然环境造成的激光传播性能变化。因此,HELEEOS包括快速计算,第一原理,全球地面到100公里,大气传播和表征包。该软件包可以创建温度、压力、水蒸气含量、光学湍流、大气颗粒和水成物的剖面,因为它们与从紫外线到无线电频率波长的逐行层传输、路径和背景辐射有关。基于物理的云和降水特征与所有可能的观察角度的无云视线算法的概率相结合。HELEEOS是在高能激光联合技术办公室的赞助下开发的。本文给出了一种独特的高保真仿真实例,用于双静态、时变五波段多光谱远程观测传递到测试对象上的激光能量。多光谱例子强调使用HELEEOS的大气效应,激光与目标的相互作用以及观测到的反射率和随后产生的热点。在表面上安装了一套传感器模型,用于在四个独立且空间偏移的MWIR和LWIR波段中收集漫反射带内激光辐射和热点的发射辐射。在对激光/目标相互作用的双向反射率分布函数(BRDF)进行建模时特别注意,以考虑能量耦合到目标体和反射率作为温度函数的变化。该架构支持任何平台-目标-观察者的几何形状、地理位置、季节和时间;它提供了正确的天地背景贡献。模拟准确地模拟热响应,动力学,湍流,基扰动,衍射,和信噪比。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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