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Robust optimization for a wing at drag divergence Mach number based on an improved PSO algorithm

机译:基于改进PSO算法的拖曳发散Mach数的机翼鲁棒优化

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In this study, an improved PSO (particle swarm optimization) algorithm is proposed and applied to the robust optimization of a wing at drag divergence Mach number. In order to reduce the number of design variables, a six-order CST (class/shape function transformation) method is employed for airfoil parameterization. For the purpose of improving the optimization efficiency, Delaunay graph mapping method is adopted for mesh deformation in each iteration of the airfoil optimization, and NURBS (non-uniform rational B-splines)-FFD (free-form deformation) method is employed for mesh deformation in each iteration of the wing optimization. For improving the standard PSO algorithm, CVTs (centroidal Voronoi tessellations) method is introduced to generate original positions of the particles more dispersedly, a second-order oscillating scheme is used and an FDR (fitness distance ratio) item is added for updating velocities and positions of the particles. By virtue of the improved PSO algorithm, single point optimization and robust optimization are conducted for both airfoil and wing. The results indicate that, comparing with the single point optimizations, the robust optimizations not only reduce drag coefficients of the airfoil and the wing at cruise Mach numbers, but also attenuate the drag increments as the Mach number increases up to drag divergence Mach numbers. (C) 2019 Elsevier Masson SAS. All rights reserved.
机译:在该研究中,提出了一种改进的PSO(粒子群优化)算法并将其应用于拖动发散马赫数的机翼的鲁棒优化。为了减少设计变量的数量,采用六阶CST(类/形状函数变换)方法来翼型参数化。为了提高优化效率,采用Delaunay图形映射方法在翼型优化的每次迭代中采用网格变形,并采用NURBS(非均匀RATIONATY B样条)-FFD(自由形状变形)方法来进行网格机翼优化的每次迭代中的变形。为了改进标准PSO算法,引入CVT(质心VORONOI曲面细分)方法以更大分散地产生颗粒的原始位置,使用二阶振荡方案,并添加FDR(健身距离)项目以更新速度和位置颗粒。借助于改进的PSO算法,对翼型和机翼进行单点优化和鲁棒优化。结果表明,与单点优化相比,鲁棒优化不仅减少翼型的拖曳系数和巡航马赫数,而且在马赫数增加以拖动发散马赫数时,还衰减拖动增量。 (c)2019年Elsevier Masson SAS。版权所有。

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