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首页> 外文期刊>Atmosphere >A Turbulence-Oriented Approach to Retrieve Various Atmospheric Parameters Using Advanced Lidar Data Processing Techniques
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A Turbulence-Oriented Approach to Retrieve Various Atmospheric Parameters Using Advanced Lidar Data Processing Techniques

机译:使用先进的激光雷达数据处理技术的湍流导向方法检索各种大气参数

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摘要

The article is aimed at presenting a semi-empirical model coded and computed in the programming language Python, which utilizes data gathered with a standard biaxial elastic lidar platform in order to calculate the altitude profiles of the structure coefficients of the atmospheric refraction index C N 2 ( z ) and other associated turbulence parameters. Additionally, the model can be used to calculate the PBL (Planetary Boundary Layer) height, and other parameters typically employed in the field of astronomy. Solving the Fernard–Klett inversion by correlating sun-photometer data obtained through our AERONET site with lidar data, it can yield the atmospheric extinction and backscatter profiles α ( z ) and β ( z ) , and thus obtain the atmospheric optical depth. Finally, several theoretical notions of interest that utilize the solved parameters are presented, such as approximated relations between C N 2 ( z ) and the atmospheric temperature profile T ( z ) , and between the scintillation of backscattered lidar signal and the average wind speed profile U ( z ) . These obtained profiles and parameters also have several environmental applications that are connected directly and indirectly to human health and well-being, ranging from understanding the transport of aerosols in the atmosphere and minimizing the errors in measuring it, to predicting extreme, and potentially-damaging, meteorological events.
机译:本文旨在介绍一种以Python编程语言进行编码和计算的半经验模型,该模型利用通过标准双轴弹性激光雷达平台收集的数据来计算大气折射率CN 2( z)和其他相关的湍流参数。另外,该模型可用于计算PBL(行星边界层)高度,以及在天文学领域通常采用的其他参数。通过将通过我们的AERONET站点获得的太阳光度计数据与激光雷达数据相关联来解决Fernard-Klett反演,它可以产生大气消光和后向散射剖面α(z)和β(z),从而获得大气的光学深度。最后,提出了一些利用已求解参数的理论关注概念,例如CN 2(z)与大气温度曲线T(z)之间的近似关系,以及反向散射激光雷达信号的闪烁与平均风速曲线U之间的近似关系。 (z)。这些获得的配置文件和参数还具有与人类健康和福祉直接或间接相关的几种环境应用,范围从了解大气中气溶胶的传输并最大程度地减少测量中的误差,到预测极端的和潜在的损害,气象事件。

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