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Development of an Aqueduct Flow and Ice Simulation Model

机译:渡槽流冰仿真模型的开发

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The Fargo-Moorhead Metropolitan Area Flood Risk Management Project, located at Fargo, ND, and Morehead, MN, is to include an aqueduct to carry the flow of the Maple River over a proposed diversion channel. The aqueduct is 250 ft long with an internal width of 50 ft. A V-shaped low-flow channel is built into the floor slab at the center of the channel and is 12 ft wide. The aqueduct will operate throughout the winter when frigid conditions will cause ice to form. This study quantified the amount of ice that forms in the aqueduct under different winter operating scenarios. To achieve this, the study developed an aqueduct flow and ice simulation model composed of five modules. These modules determine the water surface profile through the aqueduct, the water temperature resulting from the interaction of proposed bed heaters and the surface ice conditions, the formation of bed ice by heat conduction through the aqueduct to the outside air, the formation of surface ice through heat transfer from the water surface to the atmosphere, and the interaction of the bed and surface ice. In addition, a HEC-RAS and a finite-element thermal conduction model of the aqueduct were used. The HEC-RAS model was used to determine the aqueduct's downstream water surface elevation boundary condition. We also used the HEC-RAS model to verify the open water flow estimation of the aqueduct model. We used the finite-element thermal conduction model to develop a 2-D simulation of the thermal conduction through the aqueduct cross section. The thermal conduction model allowed us to analyze the heat flow through the aqueduct structure under different flow conditions, heating elements applications, and thermal insulation applications. The model simulated flow through the aqueduct based on the conditions for each day for the winters of 1995 to 2013 for a variety of operating scenarios.
机译:位于北达科他州北达科他州和明尼苏达州莫尔黑德的法戈-莫尔黑德都会区洪水风险管理项目将包括一个输水管道,以在拟议的引水渠上输送枫河的水流。渡槽长250英尺,内部宽度为50英尺。V型低流量通道内置在通道中央的楼板中,宽12英尺。当严酷的条件导致结冰时,渡槽将在整个冬季运行。这项研究量化了在不同冬季运行情况下渡槽中形成的冰量。为了实现这一目标,该研究开发了由五个模块组成的渡槽水流和冰的模拟模型。这些模块确定了通过渡槽的水表面轮廓,拟议的床加热器与地表冰的相互作用所产生的水温,通过渡槽与外界空气的热传导形成的床冰,通过地表的水形成冰。热量从水表面传递到大气,以及床层和表层冰的相互作用。此外,使用了渡槽的HEC-RAS和有限元导热模型。 HEC-RAS模型用于确定渡槽下游水面高程边界条件。我们还使用了HEC-RAS模型来验证渡槽模型的开放水流量估计。我们使用有限元热传导模型开发了渡槽横截面热传导的二维模拟。导热模型使我们能够分析在不同流动条件,加热元件应用和绝热应用下通过渡槽结构的热流。该模型根据1995年至2013年冬季各种操作场景下每天的状况,模拟了渡槽的流量。

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