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Critical scales to explain urban hydrological response: an application in Cranbrook, London

机译:解释城市水文反应的关键尺度:在伦敦克兰布鲁克的应用

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Rainfall variability in space and time, in relation to catchment characteristics and model complexity, plays an important role in explaining the sensitivity of hydrological response in urban areas. In this work we present a new approach to classify rainfall variability in space and time and we use this classification to investigate rainfall aggregation effects on urban hydrological response. Nine rainfall events, measured with a dual polarimetric X-Band radar instrument at the CAESAR site (Cabauw Experimental Site for Atmospheric Research, NL), were aggregated in time and space in order to obtain different resolution combinations. The aim of this work was to investigate the influence that rainfall and catchment scales have on hydrological response in urban areas. Three dimensionless scaling factors were introduced to investigate the interactions between rainfall and catchment scale and rainfall input resolution in relation to the performance of the model. Results showed that (1) rainfall classification based on cluster identification well represents the storm core, (2) aggregation effects are stronger for rainfall than flow, (3) model complexity does not have a strong influence compared to catchment and rainfall scales for this case study, and (4) scaling factors allow the adequate rainfall resolution to be selected to obtain a given level of accuracy in the calculation of hydrological response.
机译:与集水区特征和模型复杂性有关的空间和时间的降雨变化在解释城市地区水文反应的敏感方面起着重要作用。在这项工作中,我们提出了一种新的方法来对空间和时间的降雨变异性进行分类,我们使用该分类来调查降雨汇总对城市水文反应的影响。在凯撒遗址(Cauw实验部位进行大气研究,NL)的双偏振X波段雷达仪器测量的九个降雨事件,以时间和空间聚集,以获得不同的分辨率组合。这项工作的目的是调查降雨和集水量表对城市地区水文反应的影响。引入了三种无量纲缩放因子,研究了降雨量和集水区比例与降雨输入分辨率与模型的性能之间的相互作用。结果表明,(1)基于集群识别的降雨分类代表了风暴核心,(2)降雨量比流量更强,(3)模型复杂性与这种情况的集水和降雨量相比没有强烈影响研究和(4)缩放因子允许选择足够的降雨分辨率,以获得水文反应计算的给定准确度。

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