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Use of computational fluid dynamics tools to calculate the dispersion of gas and aerosol emissions in conditions of a complex terrain

机译:使用计算流体动力学工具计算气体和气溶胶排放的分散在复杂地形的条件下

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ANSYS FLUENT tools were used as part of a standard turbulence k-ε model to simulate the air flow around a number of typical obstacles (a solid cube, a solid hemisphere, and a 2D hill) which form a potential terrain in the NPP emission dispersion area and roughly correspond to the geometry of the buildings and structures within this area. For reproducibility, a non-uniform spatial grid is plotted in the computational region which condenses near the obstacle surface and the outer boundaries. The dimensions and the positions of the obstacles were chosen such that to ensure their best possible coincidence with the conditions of the published experiments. The result of simulating the velocity and direction of the air flow as the whole shows a good agreement with the data from the wind tunnel experiments in the areas in front of and over the obstacle, as well as in its air shadow. Typical accelerated flow, vortex, and reverse flow areas are reproduced reliably. There are variances observed only in the local heavy turbulence regions in the obstacle’s air shadow near the ground surface. All this indicates that it is possible to model in full scale the dispersion of the NPP emissions taking into account the peculiarities of the plant site terrain and the major onsite structures to determine more accurately the personnel and public exposure dose.
机译:ANSYS流畅的工具用作标准湍流K-ε模型的一部分,以模拟围绕许多典型障碍物(实心立方体,实心半球和2D山)的空气流动,这些障碍物在NPP排放分散中形成潜在地形区域并大致对应于该地区内建筑物的几何形状。为了再现性,在靠近障碍物表面和外边界附近的计算区域中绘制不均匀的空间网格。选择障碍物的尺寸和位置,以确保尽可能与已发表的实验的条件吻合。模拟空气流速和整体方向的结果显示了与来自障碍物前面和过度的区域中的风洞实验的数据以及其空气阴影的数据吻合良好。可靠地再现典型的加速流动,涡流和逆流区域。只有在地面附近的障碍物的空气阴影中的局部重型湍流区域中只观察到差异。这表明,可以全面模拟NPP排放的分散考虑到植物网站地形的特点和主要现场结构,以确定更准确的人员和公共曝光剂量。

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