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Multi-levels Kriging surrogate model-based robust aerodynamics optimization design method

机译:基于多级Kriging替代模型的鲁棒空气动力学优化设计方法

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摘要

Robust design optimization has a great potential application in many engineering fields. In the conventional robust aerodynamics design optimization method, the main difficulty is expensive computational cost related to a large number of function evaluations for uncertainty quantification (UQ). To alleviate the expensive burden for UQ, two levels Kriging surrogate model was introduced. The first level is for the mean value and the second level is for the variances. Through the second level Kriging surrogate models, the method of Monte Carlo Simulation (MCS), which requires a huge number of function evaluations, can be effectively applied to the analysis of variance. Efficient Global Optimization algorithm (EGO) was employed to achieve the global optimized results. To validate the performance of the design method, both one-dimensional function and two-dimensional function were applied. Finally, robust aerodynamics design optimization was applied for a low-drag airfoil. The results show that the optimal solutions obtained from the uncertainty-based optimization formulation are less sensitive to uncertainties to small manufacturing errors.
机译:强大的设计优化在许多工程领域具有很大的潜在应用。在传统的鲁棒空气动力学设计优化方法中,主要难度是与大量功能评估相关的昂贵的计算成本,用于不确定量化(UQ)。为了减轻UQ的昂贵负担,介绍了两级Kriging代理模型。第一级是平均值,第二级是差异。通过第二级Kriging代理模型,可以有效地应用于蒙特卡罗模拟(MCS)的方法,这可以有效地应用于方差的分析。有效的全局优化算法(EGO)用于实现全球优化结果。为了验证设计方法的性能,应用了一维功能和二维功能。最后,施加了鲁棒的空气动力学设计优化用于低压翼型。结果表明,从不确定性的优化制剂获得的最佳溶液对小型制造误差的不确定性敏感。

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