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Scale effect challenges in urban hydrology highlighted with a distributed hydrological model

机译:分布式水文模型突出的城市水文中的规模效应挑战

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Hydrological models are extensively used in urban water management, development and evaluation of future scenarios and research activities. There is a growing interest in the development of fully distributed and grid-based models. However, some complex questions related to scale effects are not yet fully understood and still remain open issues in urban hydrology. In this paper we propose a two-step investigation framework to illustrate the extent of scale effects in urban hydrology. First, fractal tools are used to highlight the scale dependence observed within distributed data input into urban hydrological models. Then an intensive multi-scale modelling work is carried out to understand scale effects on hydrological model performance. Investigations are conducted using a fully distributed and physically based model, Multi-Hydro, developed at Ecole des Ponts ParisTech. The model is implemented at 17 spatial resolutions ranging from 100 to 5?m. Results clearly exhibit scale effect challenges in urban hydrology modelling. The applicability of fractal concepts highlights the scale dependence observed within distributed data. Patterns of geophysical data change when the size of the observation pixel changes. The multi-scale modelling investigation confirms scale effects on hydrological model performance. Results are analysed over three ranges of scales identified in the fractal analysis and confirmed through modelling. This work also discusses some remaining issues in urban hydrology modelling related to the availability of high-quality data at high resolutions, and model numerical instabilities as well as the computation time requirements. The main findings of this paper enable a replacement of traditional methods of qmodel calibration/q by innovative methods of qmodel resolution alteration/q based on the spatial data variability and scaling of flows in urban hydrology.
机译:水文模型广泛用于城市水管理,开发和评估未来情景和研究活动。对全部分布式和基于网格的模型的发展越来越兴趣。然而,与规模效应有关的一些复杂问题尚未完全理解,并且仍然仍然是城市水文中的开放问题。在本文中,我们提出了一项两步调查框架,以说明城市水文中的规模效应程度。首先,分形工具用于突出显示在城市水文模型中的分布式数据输入中观察到的比例依赖性。然后进行密集的多尺度建模工作,以了解水文模型性能的规模影响。在EcoledePonts Paristech开发的全部分布式和物理基础的模型进行了调查。该模型以17个空间分辨率实现,范围为100至5?m。结果明确表现出城市水文建模中的规模效应挑战。分形概念的适用性突出显示分布式数据中观察到的比例依赖性。当观察像素的大小发生变化时,地球物理数据的模式改变。多尺度建模调查证实了对水文模型性能的规模影响。在分形分析中发现的三个尺度范围分析了结果,并通过建模证实了。这项工作还讨论了与高分辨率高质量数据的可用性相关的城市水文建模中的一些剩余问题,以及模型数值不稳定性以及计算时间要求。本文的主要发现,通过基于城市水文中的空间数据变异和流量的流量的空间数据变化和缩放,通过创新方法更换传统的模型校准的传统方法模型校准

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