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An efficient wall model for large-eddy simulation based on optimal control theory

机译:基于最优控制理论的大涡模拟高效壁模型

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摘要

Large-eddy simulation is currently very expensive for high Reynolds number attached flows due to the need to resolve the wall layer. In order to reduce this expense, wall modeling has been proposed to provide approximate boundary conditions to the LES that allow the wall layer to be unresolved. Unfortunately, subgrid scale modeling errors and numerical errors are important in this region when a coarse grid is used, necessitating a wall model that can compensate for their effects. Optimal control theory has been used to provide such models in the past, but is impractical for complex flows due to the need to provide a target mean velocity profile and the computational expense involved with solving gradient-based optimization problems. In this paper we address the latter issue by reformulation of the optimization problem to include only data near the wall. Further approximations have been made to the Navier-Stokes and adjoint equations used in the optimization process that significantly reduce the computational cost. Results will be presented comparing this method with other control-based and standard wall models. (c) 2006 American Institute of Physics.
机译:由于需要解析壁层,因此对于高雷诺数附加流,大涡流模拟目前非常昂贵。为了减少这种花费,已经提出了壁建模以向LES提供近似的边界条件,该边界条件允许壁层未被解析。不幸的是,当使用粗网格时,亚网格比例尺建模误差和数值误差在该区域很重要,因此需要能够补偿其影响的墙模型。过去,最优控制理论已用于提供此类模型,但由于需要提供目标平均速度曲线以及解决基于梯度的优化问题所涉及的计算费用,因此对于复杂的流程而言是不切实际的。在本文中,我们通过将优化问题重新表述为仅包括墙附近的数据来解决后一个问题。对优化过程中使用的Navier-Stokes和伴随方程式进行了进一步近似,从而显着降低了计算成本。将比较此方法与其他基于控件和标准墙模型的结果。 (c)2006年美国物理研究所。

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