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Adaptation of Pressure Based CFD Solvers for Mesoscale Atmospheric Problems

机译:基于压力的CFD解算器对中尺度大气问题的适应

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General purpose Computational Fluid Dynamics (CFD) solvers are frequently used in small-scale urban pollution dispersion simulations without a large extent of ver- tical flow. Vertical flow, however, plays an important role in the formation of local breezes, such as urban heat island induced breezes that have great significance in the ventilation of large cities. The effects of atmospheric stratification, anelasticity and Coriolis force must be taken into account in such simulations. We introduce a general method for adapting pressure based CFD solvers to atmospheric flow simulations in order to take advantage of their high flexibility in geometrical modelling and meshing. Compressibility and thermal stratification effects are taken into account by utilizing a novel system of transformations of the field variables and by adding consequential source terms to the model equations of incompressible flow. Phenomena involving mesoscale to microscale coupled effects can be analyzed without model nesting, applying only local grid refinement of an arbitrary level. Elements of the method are validated against an analytical solution, results of a reference calculation, and a laboratory scale urban heat island circulation experiment. The new approach can be applied with benefits to several areas of application. Inclusion of the moisture transport phenomena and the surface energy balance are important further steps towards the practical application of the method.
机译:通用计算流体动力学(CFD)求解器经常在没有大量垂直流量的情况下用于小型城市污染扩散模拟中。但是,垂直流在局部微风的形成中起着重要作用,例如城市热岛引起的微风,这些微风在大城市的通风中具有重要意义。在这种模拟中必须考虑到大气分层,无弹性和科里奥利力的影响。我们介绍一种使基于压力的CFD求解器适应大气流动模拟的通用方法,以利用其在几何建模和网格划分中的高度灵活性。通过利用一种新型的现场变量转换系统,并在不可压缩流的模型方程中添加相应的源项,可以考虑可压缩性和热分层效应。可以在不进行模型嵌套的情况下分析涉及中尺度到微观尺度耦合效应的现象,仅应用任意级别的局部网格细化即可。该方法的元素针对分析解决方案,参考计算结果和实验室规模的城市热岛环流实验进行了验证。新方法可以有益地应用于多个应用领域。包含水分传输现象和表面能平衡是朝着该方法的实际应用迈进的重要的进一步步骤。

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