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Assessment of Suspended Solid Removal in a Surface Flow Constructed Wetland Using a Three-Dimensional Numerical Model

机译:基于三维数值模型的地表流人工湿地悬浮固体去除量评估

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摘要

Surface flow constructed wetlands (SFCWs) have been widely used to treat various types of wastewater and stormwater due to the advantages such as low costs for operating and maintenance compared with conventional treatment systems. In SFCW, the flow pattern, which is determined by the geometric features including bed morphology and vegetation distribution, significantly influences the removal processes of suspended solids and other pollutants. In this study, a three-dimensional computational fluid dynamics model, that integrates hydrodynamic model and the Lagrangian particle tracking model, is applied to determine the effectiveness of a SFCW in removing suspended solids based on the predicted flow characteristics and distribution of suspended solids in the wetland. After the validation, the three-dimensional numerical model is applied to illustrate the three-dimensional internal flow pattern in the wetland. The predicted concentrations of suspended solids at several cross-sections in downstream direction are compared with the field sampling data and also the results from a traditional first-order decay model. The results show that the 3D model performs reasonably well predicting complex flow fields associated with complex wetland geometry. This study indicates that the 3D model is an effective tool to support the management and operation of field SFCWs. Also, it can help to improve the design of SFCWs providing better understanding of interactions among the geometric features, the flow characteristics and the contaminants behaviors.
机译:与传统处理系统相比,地表流人工湿地(SFCWs)具有运行和维护成本低等优点,被广泛用于处理各种类型的废水和雨水。在SFCW中,由河床形态和植被分布等几何特征决定的流动模式对悬浮固体和其他污染物的去除过程有显著影响。本研究采用融合了水动力模型和拉格朗日粒子跟踪模型的三维计算流体力学模型,基于湿地悬浮物的流动特征和分布预测,确定了SFCW去除悬浮物的有效性。验证结果为研究结果,利用三维数值模型对湿地内部流动模式进行了说明。将下游方向几个横截面处的悬浮固体浓度预测值与现场采样数据以及传统一阶衰减模型的结果进行了比较。结果表明,三维模型在预测复杂湿地几何形状的复杂流场方面表现较好。本研究表明,三维模型是支持现场SFCW管理和操作的有效工具。此外,它还有助于改进SFCW的设计,从而更好地了解几何特征、流动特性和污染物行为之间的相互作用。

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