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Scale-resolving simulations using a lattice Boltzmann-based approach

机译:使用基于格子Boltzmann方法的尺度解析模拟

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This paper summarizes the fundamental concepts behind the lattice Boltzmann approach for scale-resolving numerical flow simulations with a brief description of the solver algorithms and models in the lattice Boltzmann-based code PowerFLOW. The focus is put on representative simulation examples including a direct numerical simulation of a channel and the NACA0012 airfoil at a chord Reynolds number of 657,000 resolving all the turbulent scales and several fundamental cases increasing in flow and geometric complexity demonstrating the hybrid turbulence approach which is resolving only the large coherent turbulent structures, while smaller turbulent flow structures are modeled. Simulation results of a simple shear layer flow, a smooth body separation on the NASA Hump and iced airfoils are documented. The results provide a good overview of the high accuracy achieved for transitioning and separated turbulent flow situations and the mechanisms initiating the switch from mainly modeled to mainly resolved turbulent flow structures. Combined with the high efficiency of the numerical method, developments following the described strategy are expected to evolve further and allow additional industrial deployment.
机译:本文总结了基于格Boltzmann方法进行比例解析数值流模拟的基本概念,并简要介绍了基于格Boltzmann的代码PowerFLOW中的求解器算法和模型。重点放在具有代表性的模拟示例上,包括通道和NACA0012翼型的雷诺数为657,000的直接数值模拟,解决了所有湍流尺度,并且几种基本情况的流量和几何复杂度增加,证明了正在解决的混合湍流方法仅对大型相干湍流结构进行建模,而对较小湍流结构进行建模。记录了简单的剪切层流动,NASA驼峰上光滑的车身分离以及冰翼型的模拟结果。结果很好地概述了在过渡和分离湍流情况下实现的高精度以及引发从主要建模到主要解析湍流结构转换的机制。结合数值方法的高效率,遵循所述策略的开发有望进一步发展并允许更多的工业部署。

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