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CFD simulations of turbulent buoyant atmospheric flows over complex geometry: Solver development in OpenFOAM

机译:复杂几何形状上湍流的大气流动的CFD模拟:OpenFOAM中的求解器开发

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This paper, first of a two-part work, presents an overview of the development of a computational fluid dynamics (CFD) solver in OpenFOAM platform to simulate the internal ventilation regime within an open pit including the effects of developed turbulence, buoyancy and stratification. To incorporate the effect of stratification in the simulations we have chosen a formulation that includes density as a variable in the system of equations, thus facilitating further study of buoyant flows. Given the importance of turbulence in this type of large-scale flows we have used Large Eddy Simulation (LES) to incorporate it in the calculation, using a Detached Eddy Simulation (DES) approach to solve the flow near walls. Specific initial and boundary conditions were defined. The results presented in this paper, including several tests of the solver where we compared our results with experimental or numerical data, have demonstrated the validity of using OpenFOAM to study this type of complex multiphysics problems. Especially advantageous in this regard are the flexibility provided by the modular structure of the code, the possibility of defining specific boundary and initial conditions for each case, and the ability of generating detailed meshes of complex geometries. Also we probed the benefits of using a DES approach, allowing us to solve developed turbulence and the interaction of the flow with detailed geometry. A second paper associated to this work will expose the application of the solver to large open pit mines, simulating the particular case of Chuquicamata, one of the largest open pit mines in the world, located in northern Chile.
机译:本文是由两部分组成的第一部分,概述了OpenFOAM平台中的计算流体力学(CFD)求解器的开发概况,以模拟露天矿井中的内部通风状况,包括湍流,浮力和分层的影响。为了将分层效应纳入仿真中,我们选择了一种公式,该公式将密度作为变量包含在方程组中,从而有利于进一步研究浮力。考虑到湍流在这类大尺度流动中的重要性,我们使用大涡模拟(LES)将其纳入计算中,使用分离涡模拟(DES)方法求解壁附近的流动。确定了特定的初始条件和边界条件。本文介绍的结果,包括对求解器的若干测试(将我们的结果与实验数据或数值数据进行比较)证明了使用OpenFOAM研究此类复杂的多物理场问题的有效性。在这方面,特别有利的是代码的模块化结构提供的灵活性,为每种情况定义特定边界和初始条件的可能性以及生成复杂几何形状的详细网格的能力。我们还探讨了使用DES方法的好处,从而使我们能够解决湍流以及流体与详细几何形状之间的相互作用。与这项工作相关的第二篇论文将揭露求解器在大型露天矿中的应用,模拟智利北部世界上最大的露天矿之一Chuquicamata的特殊情况。

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