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Multi-objective optimization of guide vanes for axial flow cyclone using CFD, SVM, and NSGA II algorithm

机译:使用CFD,SVM和NSGA II算法的轴流旋风的导叶片的多目标优化

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摘要

Guide vanes are the key components of axial flow cyclones (AFCs). The structural parameters of these vanes have a significant impact on the separation performance of the AFC. A multi-objective optimization study of guide vanes was conducted using a computational fluid dynamics (CFD) model previously proposed by the present authors, support vector machine (SVM), and non-dominated sorting genetic algorithm-ll (NSGA-11). The obtained Pareto optimal solutions demonstrate that the separation efficiency and pressure drop increase as the number and wrapping angle of the guide vane increase; further, they decrease as the outlet angle and width of the guide vane increase. Moreover, the correlation between the separation efficiency and the pressure drop in the Pareto front was regressed to facilitate the design of the guide vane to achieve the desired separation performance. The research results can provide useful guidance for the design and optimization of AFCs. (C) 2020 Published by Elsevier B.V.
机译:导叶是轴流旋风器(AFC)的关键部件。这些叶片的结构参数对AFC的分离性能产生显着影响。使用先前由本作者提出的计算流体动力学(CFD)模型进行导叶片的多目标优化研究,支持向量机(SVM)和非主导的分类遗传算法-11(NSGA-11)。所获得的Pareto最佳解决方案表明,作为导向叶片的数量和包装角增加,分离效率和压降增加;此外,它们随着导向叶片的出口角度和宽度而减小。此外,分离效率和帕累托前部的压降之间的相关性回归以便于设计导叶片以实现所需的分离性能。研究结果可以为AFCS的设计和优化提供有用的指导。 (c)2020由elsevier b.v发布。

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