首页> 外文期刊>Journal of hydrologic engineering >Coupled Two-Dimensional Surface Flow and Three-Dimensional Subsurface Flow Modeling for Drainage of Permeable Road Pavement
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Coupled Two-Dimensional Surface Flow and Three-Dimensional Subsurface Flow Modeling for Drainage of Permeable Road Pavement

机译:渗透性路面排水的二维表面流和三维地下流耦合模型

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Permeable road pavement has been used widely as a sustainable alternative to the traditional impervious pavement and has become an increasingly important component of the hydrological cycle. The benefits of permeable pavement depend on its hydraulic performance and drainage efficiency, for which there have been very few rigorously tested numerical models. In this paper, a new computational model is presented to simulate fluid motion above and within the porous road pavement. This model solves the coupled equation system for surface and subsurface flows using a finite-volume method. The surface flow and the subsurface flow are modeled by the two-dimensional diffusive wave equation and the three-dimensional Richards equation, respectively. A modified Dirichlet-Neumann partitioning method is used as the coupling algorithm to ensure the continuity of pressure head and the conservation of mass. The diffusive wave model for the surface flow is solved with a flux correction transport (FCT) scheme that considers the dry/wet interface and guarantees the positiveness of the water depth. The three-dimensional Richards equation for the subsurface makes it possible to model complex drainage configurations. With the present model, the infiltration process from the road surface into the permeable pavement can be captured more accurately in comparison with many previous models that assumed direct rainfall recharge into the free surface without the leaching process. This capability is important for predicting the timing of road surface ponding, which is critical for safety. The proposed model is extensively validated and an example application for porous pavement design is provided. Results show that the porous pavement with limited thickness considered in this research delays the timing of surface ponding but has less impact on the steady-state water depth and spread.
机译:透水路面已被广泛用作传统不透水路面的可持续替代方法,并已成为水文循环中日益重要的组成部分。透水路面的好处取决于它的水力性能和排水效率,对此,很少有经过严格测试的数值模型。在本文中,提出了一种新的计算模型来模拟多孔路面上方和内部的流体运动。该模型使用有限体积法求解了地表和地下流动的耦合方程组。地表流和地下流分别由二维扩散波方程和三维Richards方程建模。改进的Dirichlet-Neumann划分方法用作耦合算法,以确保压头的连续性和质量守恒。通过考虑干/湿界面并保证水深为正的通量校正传输(FCT)方案,解决了地表流的扩散波模型。地下的三维Richards方程使建模复杂的排水构造成为可能。使用本模型,与许多以前的模型(假定直接降雨将雨水补给到自由表面而不进行淋滤过程)相比,可以更准确地捕获从路面到渗透性路面的渗透过程。此功能对于预测路面积水的时间非常重要,这对于安全性至关重要。所提出的模型得到了广泛的验证,并提供了用于多孔路面设计的示例应用程序。结果表明,本研究中考虑的厚度有限的多孔路面延缓了表面积水的时间,但对稳态水深和扩散的影响较小。

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