首页> 外文会议>Atmospheric Propagation IV; Proceedings of SPIE-The International Society for Optical Engineering; vol.6551 >Worldwide estimates and uncertainty assessments of laser propagation for diverse geometries for paths in the altitude regime of 3 km and below at wavelengths 0.355 μm to 10.6 μm
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Worldwide estimates and uncertainty assessments of laser propagation for diverse geometries for paths in the altitude regime of 3 km and below at wavelengths 0.355 μm to 10.6 μm

机译:在波长为0.355μm至10.6μm的3 km及以下海拔范围内,对于各种几何形状的路径,世界范围内对激光传播的估计和不确定性评估

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摘要

The directed energy modeling and simulation community can make important direct contributions to the joint warfighting community by establishing clear and fully integrated future program requirements. These requirements are best determined via analysis of the expected variability/uncertainty in system performance arising from spatial, spectral and temporal variations in operating conditions. In this study of atmospheric effects on HEL systems, the parameter space is explored using the Air Force Institute of Technology Center for Directed Energy's (AFIT/CDE) High Energy Laser End-to-End Operational Simulation (HELEEOS) parametric one-on-one engagement level model. HELEEOS is anchored to respected wave optics codes and all significant degradation effects—including optical turbulence and molecular, aerosol, and liquid water drop/droplet absorption and scattering—are represented in the model. Beam spread effects due to thermal blooming caused by the various absorbers are considered when appropriate. Power delivered in a 5 cm diameter circular area normalized by the total transmitted power is the primary performance metric used in the study, with results presented in the form of histograms. The expected performance of laser systems operating at both low and high powers is assessed at 24 wavelengths between 0.355 μm and 10.6 μm for a number of widely dispersed land and maritime locations worldwide. Scenarios evaluated include both up and down looking generally oblique engagement geometries over ranges up to 6000 meters in which anticipated clear air aerosols and thin layers of fog, and very light rain are simulated. Seasonal and boundary layer variations (summer and winter) for nighttime conditions for a range of relative humidity percentile conditions are considered to determine optimum employment techniques to exploit or defeat the environmental conditions. Each atmospheric particulate/obscurant is evaluated based on its wavelength-dependent forward and off-axis scattering characteristics and absorption effects on laser energy delivered. In addition to realistic vertical profiles of molecular and aerosol absorption and scattering, correlated optical turbulence profiles in probabilistic (percentile) format are used, a feature unique to HELEEOS.
机译:定向能源建模和仿真社区可以通过建立明确且完全整合的未来计划要求,为联合作战社区做出重要的直接贡献。这些需求最好通过分析由于运行条件的空间,频谱和时间变化而引起的系统性能的预期变化/不确定性来确定。在研究大气对HEL系统的影响时,使用了美国空军定向能量技术中心(AFIT / CDE)高能激光端对端操作模拟(HELEEOS)参数一对一的方法探索参数空间参与度模型。 HELEEOS遵循受人尊敬的波浪光学规范,所有显着的降级效果(包括光学湍流和分子,气溶胶以及液态水滴/水滴的吸收和散射)均在模型中表示。适当时考虑由各种吸收器引起的热起霜引起的光束扩散效应。通过总传输功率归一化后,在直径为5厘米的圆形区域中传输的功率是研究中使用的主要性能指标,其结果以直方图的形式表示。在全球范围内广泛分布的陆地和海上位置,在0.355μm至10.6μm之间的24个波长下,评估了在低功率和高功率下工作的激光系统的预期性能。评估的场景包括向上和向下看起来通常倾斜的接合几何形状(范围高达6000米),其中模拟了预期的晴朗空气气溶胶和薄雾层,以及微雨。夜间条件在一定范围的相对湿度百分比条件下的季节性和边界层变化(夏季和冬季)被认为是确定利用或克服环境条件的最佳就业技术。每种大气颗粒/遮盖剂均根据其与波长有关的前向和离轴散射特性以及对所传递的激光能量的吸收效应进行评估。除了实际的分子和气溶胶吸收和散射的垂直轮廓外,还使用了概率(百分位数)格式的相关光学湍流轮廓,这是HELEEOS独有的功能。

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