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A wetland model incorporating overland and channel flow, solute transport and surface/ground water interactions.

机译:结合了陆上和河道流量,溶质运移和地表/地下水相互作用的湿地模型。

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The crucial role played by surface water/ground water interactions in water resources and hydrologic applications has only recently been recognized. The interaction with ground water occurs with all types of surface waters such as streams, lakes, and wetlands. Modeling the interactions between ground water and surface water necessitates a detailed understanding of flood wave propagation, including conceptual models for its prediction, governing differential equations and their numerical solution. For example, explicit and implicit finite difference numerical methods are developed as part of this thesis to solve kinematic and diffusion waves for both overland and open channel flows. Furthermore, an analytical solution was derived for diffusion waves specifically applied to overland flow problems. Comparison of results on synthetic examples shows that numerical and analytical solutions are in good agreement. A comprehensive wetland model WETland Solute TrANsport Dynamics (WETSAND) was developed which has both flow and solute transport components, incorporates surface/ground water interactions, and accounts for upstream contributions from urbanized areas. The effect of wetlands on storm water runoff was investigated by routing the overland flow through the wetland area, collecting the runoff within the stream and transporting it to the receiving water. The computed velocity profiles were used to predict the distribution of pollutant concentrations in the wetland areas. The water quality component solves the advection-dispersion equation for several nitrogen and phosphorus constituents. In addition, output from the newest version of the EPA Storm Water Management Model (SWMM5) was incorporated into this wetland model to simulate the runoff quantity and quality time series flowing into the wetland from upstream urban areas. An application of the model to the Duke University West Campus and the Duke University constructed wetland area in the Sandy Creek watershed is presented. Finally, a mathematical model was developed to show the effect of interactions between streams and ground water on stream solute transport. This model represents the movement of water through the hyporheic zone in order to explain the physics of water exchange between the surface water and the porous media in a mechanistic manner. This new model was verified with measured data from the Uvas Creek experiment conducted by Bencala and Walters.
机译:直到最近才认识到地表水/地下水相互作用在水资源和水文应用中所起的关键作用。与地下水的相互作用发生在所有类型的地表水中,例如溪流,湖泊和湿地。对地下水和地表水之间的相互作用进行建模需要对洪水波的传播进行详细的了解,包括其预测的概念模型,控制微分方程及其数值解。例如,本文开发了显式和隐式有限差分数值方法,以解决陆上和明渠流动的运动波和扩散波。此外,针对扩散波得出了解析解决方案,该解决方案专门用于陆上流动问题。综合实例的结果比较表明,数值解和解析解吻合良好。开发了一个综合的湿地模型WETland Solute TrANsport Dynamics(WETSAND),该模型具有流动和溶质运移两个部分,并结合了地表/地下水相互作用,并考虑了城市化地区的上游贡献。湿地对雨水径流的影响通过以下途径进行研究:将陆路水流路由到湿地区域,将径流收集在溪流中并将其输送到接收水。计算出的速度剖面用于预测湿地地区污染物的浓度分布。水质成分可解决几种氮和磷成分的对流扩散方程。此外,最新版本的EPA雨水管理模型(SWMM5)的输出被合并到该湿地模型中,以模拟从上游市区流入湿地的径流量和质量时间序列。提出了该模型在桑迪克里克流域杜克大学西校区和杜克大学人工湿地面积中的应用。最后,建立了一个数学模型以显示河流与地下水之间的相互作用对河流溶质运移的影响。该模型表示水在水流下带的运动,以便以机械方式解释地表水和多孔介质之间水交换的物理原理。本新模型已由Bencala和Walters进行的Uvas Creek实验获得的测量数据验证。

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