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首页> 外文期刊>Flow, Turbulence and Combustion >A Discrete Adjoint Approach for the Optimization of Unsteady Turbulent Flows
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A Discrete Adjoint Approach for the Optimization of Unsteady Turbulent Flows

机译:离散伴随算法优化非定常湍流

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摘要

In this paper we present a discrete adjoint approach for the optimization of unsteady, turbulent flows. While discrete adjoint methods usually rely on the use of the reverse mode of Automatic Differentiation (AD), which is difficult to apply to complex unsteady problems, our approach is based on the discrete adjoint equation directly and can be implemented efficiently with the use of a sparse forward mode of AD. We demonstrate the approach on the basis of a parallel, multigrid flow solver that incorporates various turbulence models. Due to grid deformation routines also shape optimization problems can be handled. We consider the relevant aspects, in particular the efficient generation of the discrete adjoint equation and the parallel implementation of a multigrid method for the adjoint, which is derived from the multigrid scheme of the flow solver. Numerical results show the efficiency of the approach for a shape optimization problem involving a three dimensional Large Eddy Simulation (LES).
机译:在本文中,我们提出了一种用于优化非稳态湍流的离散伴随方法。尽管离散的伴随方法通常依赖于自动微分(AD)的反向模式,这很难应用于复杂的非定常问题,但我们的方法直接基于离散的伴随方程,可以通过使用a AD的稀疏转发模式。我们在并行多网格流量求解器的基础上演示了该方法,该求解器结合了各种湍流模型。由于网格变形例程,还可以处理形状优化问题。我们考虑相关方面,尤其是离散伴随方程的高效生成以及对伴随的多重网格方法的并行实现,该方法是从流求解器的多重网格方案派生而来的。数值结果表明,该方法对于涉及三维大涡模拟(LES)的形状优化问题的效率。

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