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首页> 外文期刊>Journal of Applied Meteorology and Climatology >Identification of Vertical Profiles of Reflectivity for Correction of Volumetric Radar Data Using Rainfall Classification
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Identification of Vertical Profiles of Reflectivity for Correction of Volumetric Radar Data Using Rainfall Classification

机译:利用降雨分类识别反射率垂直剖面,以校正体积雷达数据

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摘要

Nonuniform beam filling associated with the vertical variation of atmospheric reflectivity is an important source of error in the estimation of rainfall rates by radar. It is, however, possible to correct for this error if the vertical profile of reflectivity (VPR) is known. This paper presents a method for identifying VPRs from volumetric radar data. The method aims at improving an existing algorithm based on the analysis of ratios of radar measurements at multiple elevation angles. By adding a rainfall classification procedure defining more homogeneous precipitation patterns, the issue of VPR homogeneity is specifically addressed. The method is assessed using the dataset from a volume-scanning strategy for radar quantitative precipitation estimation designed in 2002 for the Bollene radar (France). The identified VPR is more representative of the rain field than are other estimated VPRs. It has also a positive impact on radar data processing for precipitation estimation: while scatter remains unchanged, an overall bias reduction at all time steps is noticed (up to 6% for all events) whereas performance varies with type of events considered (mesoscale convective systems, cold fronts, or shallow convection) according to the radar-observation conditions. This is attributed to the better processing of spatial variations of the vertical profile of reflectivity for the stratiform regions. However, adaptation of the VPR identification in the difficult radar measurement context in mountainous areas andto the rainfall classification procedure proved challenging because of data fluctuations.
机译:与大气反射率垂直变化有关的不均匀波束填充是雷达估算降雨率时误差的重要来源。但是,如果已知垂直反射率(VPR),则可以纠正此错误。本文提出了一种从体积雷达数据中识别VPR的方法。该方法旨在基于对多个仰角处的雷达测量比率的分析来改进现有算法。通过添加定义更均匀降水模式的降雨分类程序,可以专门解决VPR均匀性问题。该方法是使用2002年为Bollene雷达(法国)设计的用于雷达定量降水估计的体积扫描策略的数据集进行评估的。与其他估计的VPR相比,所识别的VPR更能代表雨场。这也对雷达数据处理以进行降水估算有积极影响:虽然散射保持不变,但在所有时间步长上总的偏差减小了(对于所​​有事件最高为6%),而性能随所考虑事件的类型而变化(中尺度对流系统) ,冷锋或浅对流)根据雷达的观测条件。这归因于对层状区域的反射率的垂直剖面的空间变化的更好处理。但是,由于数据波动,在山区困难的雷达测量环境中和降雨分类程序中适应VPR识别被证明具有挑战性。

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