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首页> 外文期刊>Journal of aerospace engineering >Natural Laminar Flow Optimization of Transonic Nacelle Based on Differential Evolution Algorithm
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Natural Laminar Flow Optimization of Transonic Nacelle Based on Differential Evolution Algorithm

机译:基于差分进化算法的跨音速发动机舱自然层流优化

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Natural laminar flow (NLF) design is widely used to reduce skin friction drag to improve aircraft aerodynamic performance. In this paper, a differential evolution (DE) algorithm was applied to a NLF-designed transonic nacelle. The class shape transformation (CST) method was tested in terms of accuracy before being adopted as the geometry parameterization method that describes three longitudinal profiles constructing the nacelle surface. The purpose of this optimization is to extend the laminar length of each longitudinal profile of the nacelle while maintaining pressure drag under a preset limit. A high-fidelity computational fluid dynamics (CFD) solver was used for accurate laminar/turbulence transition prediction. It was tested in terms of pressure distribution and particularly laminar transition prediction. The whole process was executed via a Python version 3 script automatically. The laminar length was extended on longitudinal profiles after DE operation. The laminar area of the optimized nacelle surface was increased by 16.64% and total drag coefficient was decreased by 11.6 counts. (c) 2019 American Society of Civil Engineers.
机译:自然层流(NLF)设计被广泛用于减少蒙皮阻力,从而改善飞机的空气动力学性能。在本文中,将差分进化(DE)算法应用于NLF设计的跨音速机舱。在将类形状变换(CST)方法用作描述构成机舱表面的三个纵向轮廓的几何参数化方法之前,先对准确性进行了测试。该优化的目的是延长机舱每个纵向轮廓的层流长度,同时将压力阻力保持在预设极限以下。高保真计算流体动力学(CFD)求解器用于精确的层流/湍流过渡预测。根据压力分布,特别是层流转变预测对它进行了测试。整个过程是通过Python第3版脚本自动执行的。 DE操作后,层流长度在纵向轮廓上延伸。优化后的机舱表面的层流面积增加了16.64%,总阻力系数减少了11.6个计数。 (c)2019美国土木工程师学会。

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