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首页> 外文期刊>Journal of Applied Meteorology and Climatology >Urban Flow and Dispersion Simulation Using a CFD Model Coupled to a Mesoscale Model
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Urban Flow and Dispersion Simulation Using a CFD Model Coupled to a Mesoscale Model

机译:使用CFD模型与中尺度模型耦合的城市流量和分散度模拟

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Flow and pollutant dispersion in a densely built-up area of Seoul, Korea, are numerically examined using a computational fluid dynamics (CFD) model coupled to a mesoscale model [fifth-generation Pennsylvania State University-National Center for Atmospheric Research Mesoscale Model (MM5)]. The CFD model used is a Reynolds-averaged Navier-Stokes equations model with the renormalization group k — e turbulence model. A one-way nesting method is employed in this study. MM5-simulated data are linearly interpolated in time and space to provide time-dependent boundary conditions for the CFD model integration. In the MM5 simulation, four one-way nested computational domains are considered, and the innermost domain with a horizontal grid size of 1 km coversthe Seoul metropolitan area and its adjacent areas, including a part of the Yellow Sea. The NCEP final analysis data are used as initial and boundary conditions for MM5. MM5 is integrated for 48 h starting from 0300 LST1 June 2004 and the coupled CFD-MM5model is integrated for 24 h starting from 0300 LST 2 June 2004. During the two-day period, a high-pressure system was dominant over the Korean peninsula, with clear conditions and weak synoptic winds. MM5 simulates local circulations characterized by sea breezes and mountain/valley winds. MM5-simulated synoptic weather and near-surface temperatures and winds are well matched with the observed ones. Results from the coupled CFD-MM5 model simulation show that the flow in the presence of real building clusters can change significantly as the ambient wind speed and direction change. Diurnally varying local circulations mainly cause changes in ambient wind speed and direction in the present simulation. Some characteristic flows—such as the double-eddy circulation, channeling flow, and vertical recirculation vortex—are simulated. Pollutant dispersion pattern and the degree of lateral pollutant dispersion are shown to be complicated in the presence of real building clusters and under varying ambient windspeed and direction. This study suggests that because of the sensitive dependency of urban flow and pollutant dispersion on variations in ambient wind, time-dependent boundary conditions should be used to better simulate or predict them when the ambientwind varies over the period of CFD model simulation.
机译:使用计算流体力学(CFD)模型与中尺度模型耦合[第五代宾夕法尼亚州立大学-国家大气研究中尺度模型(MM5),对韩国首尔人口稠密地区的流量和污染物扩散进行了数值检验)]。所使用的CFD模型是具有重新归一化组k-e湍流模型的Reynolds平均Navier-Stokes方程模型。本研究采用单向嵌套方法。 MM5模拟的数据在时间和空间上进行线性插值,以为CFD模型集成提供时间相关的边界条件。在MM5模拟中,考虑了四个单向嵌套计算域,水平网格大小为1 km的最里面的域覆盖了首尔市区及其邻近区域,包括黄海的一部分。 NCEP最终分析数据用作MM5的初始条件和边界条件。从2004年6月1日0300 LST1开始,MM5被集成了48小时,从2004年6月2日0300 LST开始,CFD-MM5模型被集成了24小时。在两天的时间里,高压系统在朝鲜半岛占主导地位,天气晴朗,天气晴朗。 MM5模拟以海风和山/谷风为特征的局部环流。 MM5模拟的天气,近地表温度和风与观测到的天气非常吻合。 CFD-MM5耦合模型仿真的结果表明,存在真实建筑群时的流量会随着环境风速和方向的变化而显着变化。在本模拟中,日变化的局部环流主要引起环境风速和风向的变化。模拟了某些特征流,例如双涡流,窜流和垂直再循环旋涡。结果表明,在实际建筑群的存在下以及环境风速和风向变化的情况下,污染物的扩散模式和污染物的横向扩散程度非常复杂。这项研究表明,由于城市流量和污染物扩散对环境风的变化具有敏感的依赖性,因此当CFD模型模拟期间环境风变化时,应使用与时间有关的边界条件更好地模拟或预测它们。

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