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Reconstructing the Drizzle Mode of the Raindrop Size Distribution Using Double-Moment Normalization

机译:使用双力标准化重建雨滴大小分布的毛毛雨模式

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摘要

Commonly used disdrometers tend not to accurately measure concentrations of very small drops in the raindrop size distribution (DSD), either through truncation of the DSD at the small-drop end or because of large uncertainties on these measurements. Recent studies have shown that, as a result of these inaccuracies, many if not most ground-based disdrometers do not capture the "drizzle mode" of precipitation, which consists of large concentrations of small drops and is often separated from the main part of the DSD by a shoulder region. We present a technique for reconstructing the drizzle mode of the DSD from "incomplete" measurements in which the drizzle mode is not present. Two statistical moments of the DSD that are well measured by standard disdrometers are identified and used with a double-moment normalized DSD function that describes the DSD shape. A model representing the double-moment normalized DSD is trained using measurements of DSD spectra that contain the drizzle mode obtained using collocated Meteorological Particle Spectrometer and 2D video disdrometer instruments. The best-fitting model is shown to depend on temporal resolution. The result is a method to estimate, from truncated or uncertain measurements of the DSD, a more complete DSD that includes the drizzle mode. The technique reduces bias on low-order moments of the DSD that influence important bulk variables such as the total drop concentration and mass-weighted mean drop diameter. The reconstruction is flexible and often produces better rain-rate estimations than a previous DSD correction routine, particularly for light rain.
机译:常用的歧波仪倾向于通过在小滴结束时或由于这些测量的大不确定性截断DSD,准确地测量雨滴尺寸分布(DSD)中非常小的液滴的浓度。最近的研究表明,由于这些不准确性,许多如果不是大多数基于地面的歧波瘤,则不会捕获降水的“毛毛雨模式”,这包括大浓度的小滴,并且通常与主要部分分开DSD由肩部区域。我们介绍了一种从“不完整”测量中重建DSD的淋雨模式的技术,其中不存在淋雨模式。通过标准歧波仪测量良好测量的DSD的两个统计矩被识别并与描述DSD形状的双力标准化DSD函数一起使用。表示代表双时刻归一化DSD的模型,使用使用配合气象粒子光谱仪和2D视频抑制器仪器获得的DSD光谱的测量训练。最佳拟合模型显示在时间分辨率上。结果是估计的方法,从DSD的截断或不确定测量,更完整的DSD包括淋雨模式。该技术减少了对DSD的低阶矩的偏差影响,其影响重要的体变量,例如总馏分浓度和大规模加权平均下降直径。重建是灵活的,并且通常会产生比以前的DSD校正程序更好的雨率估算,特别是对于小雨。

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