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首页> 外文期刊>AIAA Journal >Discrete Adjoint-Based Design Optimization of Unsteady Turbulent Flows on Dynamic Unstructured Grids
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Discrete Adjoint-Based Design Optimization of Unsteady Turbulent Flows on Dynamic Unstructured Grids

机译:基于离散伴随的动态非结构网格非定常湍流设计优化

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An adjoint-based methodology for design optimization of unsteady turbulent flows on dynamic unstructured grids is described. The implementation relies on an existing unsteady three-dimensional unstructured grid solver capable of dynamic mesh simulations and discrete adjoint capabilities previously developed for steady flows. The discrete equations for the primal and adjoint systems are presented for the backward-difference family of time-integration schemes on both static and dynamic grids. The consistency of sensitivity derivatives is established via comparisons with complex-variable computations. The current work is believed to be the first verified implementation of an adjoint-based optimization methodology for the true time-dependent formulation of the Navier-Stokes equations in a practical computational code. Large-scale shape optimizations are demonstrated for turbulent flows over a tilt-rotor geometry and a simulated aeroelastic motion of a fighter jet.
机译:描述了一种基于伴随的方法,用于动态非结构化网格上非定常湍流的设计优化。该实现依赖于现有的非稳态三维非结构化网格求解器,该求解器能够进行动态网格模拟和先前为稳定流而开发的离散伴随功能。针对静态和动态网格上的时间积分方案的后向差分族,给出了原始系统和伴随系统的离散方程。灵敏度导数的一致性是通过与复变量计算进行比较来确定的。据信,当前的工作是在实际的计算代码中,用于基于时间的Navier-Stokes方程的公式化的基于伴随的优化方法的第一个验证实施。大规模的形状优化已针对倾斜旋翼几何形状上的湍流和战斗机的模拟气动弹性运动进行了演示。

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