Aerodynamic shape optimization via non-intrusive POD-based surrogate modelling

E. Iuliano, D. Quagliarella
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引用次数: 28

Abstract

A surrogate-based optimization framework is proposed to exploit a reduced order model (ROM) as surrogate evaluator in aerodynamic design based on computational fluid dynamics (CFD) methods. The model is based on the Proper Orthogonal Decomposition (POD) of an ensemble of CFD solutions. Full POD and zonal POD models performances are analysed with respect to their suitability to find the global optimum in an evolutionary optimization frame. Indeed, reduced order models are used as fitness evaluator to improve the aerodynamic performances of a two-dimensional airfoil. Finally, the performances of various surrogate-based shape optimization (SBSO) methods are compared to the efficiency of data-fit assisted optimization and to the accuracy of a plain optimization, where, instead, each aerodynamic evaluation is performed with the high-fidelity model.
基于非侵入式pod代理模型的气动外形优化
提出了一种基于代理的优化框架,利用降阶模型(ROM)作为基于计算流体动力学(CFD)方法的气动设计的代理评估器。该模型基于CFD解集合的固有正交分解(POD)。在演化优化框架下,分析了全POD模型和分区POD模型在全局最优解中的适用性。事实上,降阶模型被用作适应度评估器来改善二维翼型的气动性能。最后,将各种基于代理的形状优化(SBSO)方法的性能与数据拟合辅助优化的效率和普通优化的精度进行了比较,在普通优化中,每个气动评估都使用高保真模型进行。
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