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Physical parameterization and sensitivity of urban hydrological models: Application to green roof systems

机译:城市水文模型的物理参数化和敏感性:在屋顶绿化系统中的应用

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Rapid urbanization has emerged as the source of many adverse environmental effects and brings cities to a vulnerable situation under future climate challenges. Green roofs are proven to be an effective solution to alleviate these effects by field observations under a wide range of climate conditions. Recent advances in modeling urban land-atmosphere interactions provide a useful tool in capturing the dynamics of coupled transport of water and energy in urban conies, thus bridge the gap of modeling at city to regional scales. The performance of urban hydrological models depends heavily on the accurate determination of the input parameter space, where uncertainty is ubiquitous. In this paper, we use an advanced Monte Carlo approach, viz. the Subset Simulation, to quantify the sensitivity of urban hydrological modeling to parameter uncertainties. Results of the sensitivity analysis reveal that green roofs exhibit markedly different thermal and hydrological behavior as compared to conventional roofs, due to the modification of the surface energy portioning by well-irrigated vegetation. In addition, statistical predictions of critical responses of green roofs (extreme surface temperature, heat fluxes, etc.) have relatively weak dependence on climatic conditions. The statistical quantification of sensitivity provides guidance for future development of urban hydrological models with practical applications such as urban heat island mitigation.
机译:快速的城市化已成为造成许多不利环境影响的根源,并在未来的气候挑战下使城市陷入脆弱的境地。通过在广泛的气候条件下进行实地观察,绿屋顶被证明是减轻这些影响的有效解决方案。城市陆地-大气相互作用建模的最新进展提供了一种有用的工具,可以捕获城市锥中水和能源的耦合传输动力学,从而缩小城市建模与区域尺度之间的差距。城市水文模型的性能在很大程度上取决于对输入参数空间的准确确定,而不确定性无处不在。在本文中,我们使用一种先进的蒙特卡洛方法,即。子集模拟,以量化城市水文模型对参数不确定性的敏感性。敏感性分析的结果表明,与常规屋顶相比,绿色屋顶表现出明显不同的热和水文行为,这是由于灌溉良好的植被改变了表面能的分配。此外,对绿色屋顶的关键响应(极端表面温度,热通量等)的统计预测对气候条件的依赖性相对较弱。敏感性的统计量化为城市水文模型的未来发展提供了指导,并为诸如城市热岛缓解等实际应用提供了指导。

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