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Four Methods for LIDAR Retrieval of Microscale Wind Fields

机译:LIDAR反演微尺度风场的四种方法

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This paper evaluates four wind retrieval methods for micro-scale meteorology applications with volume and time resolution in the order of 30 m3 and 5 s. Wind field vectors are estimated using sequential time-lapse volume images of aerosol density fluctuations. Suitably designed mono-static scanning backscatter LIDAR systems, which are sensitive to atmospheric density aerosol fluctuations, are expected to be ideal for this purpose. An important application is wind farm siting and evaluation. In this case, it is necessary to look at the complicated region between the earth’s surface and the boundary layer, where wind can be turbulent and fractal scaling from millimeter to kilometer. The methods are demonstrated using first a simple randomized moving hard target, and then with a physics based stochastic space-time dynamic turbulence model. In the latter case the actual vector wind field is known, allowing complete space-time error analysis. Two of the methods, the semblance method and the spatio-temporal method, are found to be most suitable for wind field estimation.
机译:本文以体积和时间分辨率分别为30 m 3 和5 s的顺序,评估了四种用于微型气象应用的取风方法。使用气溶胶密度波动的连续延时体积图像估算风场矢量。对大气密度气溶胶波动敏感的经过适当设计的单静态扫描后向散射激光雷达系统有望达到此目的。一个重要的应用是风电场选址和评估。在这种情况下,有必要查看地球表面与边界层之间的复杂区域,在该区域中风可能是湍流,并且分数维会从毫米扩展到千米。首先使用简单的随机移动硬目标演示方法,然后使用基于物理的随机时空动态湍流模型进行演示。在后一种情况下,实际的矢量风场是已知的,从而可以进行完整的时空误差分析。相似度法和时空法这两种方法被认为最适合风场估计。

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