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Water balance modeling over variable time scales based on the Budyko framework - Model development and testing

机译:基于Budyko框架的可变时间尺度上的水平衡建模-模型开发和测试

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Partitioning of precipitation into evapotranspiration and runoff is controlled by climate and catchment characteristics. The degree of control exerted by these factors varies with the spatial and temporal scales of processes modeled. The Budyko framework or the "Limits" concept was used to model water balance at four temporal scales (mean annual, annual, monthly and daily). The method represents a top-down approach to hydrologic modeling and is expected to achieve parsimony of model parameters. Daily precipitation, potential evapotranspiration, and streamflow from 265 catchments in Australia were used. On a mean annual basis, the index of dryness defined as the ratio of potential evapotranspiration to precipitation was confirmed to be a dominant factor in determining the water balance with one model parameter. Analysis of the data, however, suggested increased model complexity is necessary on finer time scale such as monthly. In response, the Budyko framework for mean annual water balance was extended to include additional factors and this resulted in a parsimonious lumped conceptual model on shorter-time scale. The model was calibrated and tested against measured streamflow at variable time scales and showed promising results. The strengths of the model are consistent water balance relationships across different time scales, and model parsimony and robustness. As result, the model. has the potential to be used to predict streamflow for ungauged catchments.
机译:降水分为蒸散和径流受气候和流域特征的控制。这些因素施加的控制程度随建模过程的时空尺度而变化。 Budyko框架或“限制”概念用于在四个时间尺度(平均每年,每年,每月和每天)模拟水平衡。该方法代表了自上而下的水文建模方法,有望实现模型参数的简约化。使用了澳大利亚265个集水区的日降水量,潜在的蒸散量和水流量。以年均基准,确定为潜在蒸发蒸腾量与降水量之比的干燥指数是确定一个模型参数中水平衡的主要因素。但是,对数据的分析表明,在更精细的时间范围内(例如每月),有必要增加模型的复杂性。作为回应,将Budyko的年均水平衡框架扩展到包括其他因素,这导致了在较短时间尺度上的简约集总概念模型。对该模型进行了校准,并针对可变时标下的实测流量进行了测试,并显示出令人鼓舞的结果。该模型的优势在于在不同时间范围内的水平衡关系始终保持一致,并且模型具有简约性和鲁棒性。结果是模型。有潜力被用来预测未捕获流域的水流量。

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