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CFD modeling and multi-objective optimization of cyclone geometry using desirability function, artificial neural networks and genetic algorithms

机译:使用期望函数,人工神经网络和遗传算法对旋风分离器几何形状进行CFD建模和多目标优化

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The low-mass loading gas cyclone separator has two performance parameters, the pressure drop and the collection efficiency (cut-off diameter). In this paper, a multi-objective optimization study of a gas cyclone separator has been performed using the response surface methodology (RSM) and CFD data. The effects of the inlet height, the inlet width, the vortex finder diameter and the cyclone total height on the cyclone performance have been investigated. The analysis of design of experiment shows a strong interaction between the inlet dimensions and the vortex finder diameter. No interaction between the cyclone height and the other three factors was observed. The desirability function approach has been used for the multi-objective optimization. A new set of geometrical ratios (design) has been obtained to achieve the best performance. A numerical comparison between the new design and the Stairmand design confirms the superior performance of the new design. As an alternative approach for applying RSM as a meta-model, two radial basis function neural networks (RBFNNs) have been used. Furthermore, the genetic algorithms technique has been used instead of the desirability function approach. A multi-objective optimization study using NSGA-II technique has been performed to obtain the Pareto front for the best performance cyclone separator.
机译:低质量负荷气体旋风分离器具有两个性能参数,即压降和收集效率(截止直径)。在本文中,使用响应面方法(RSM)和CFD数据对气旋分离器进行了多目标优化研究。研究了进气口高度,进气口宽度,涡流探测器直径和旋风分离器总高度对旋风分离器性能的影响。实验设计分析表明,进气口尺寸和涡流探测器直径之间存在很强的相互作用。没有观察到旋风高度与其他三个因素之间的相互作用。期望函数方法已用于多目标优化。已获得一组新的几何比率(设计)以实现最佳性能。新设计与Stairmand设计之间的数值比较证实了新设计的卓越性能。作为将RSM应用为元模型的替代方法,已使用了两个径向基函数神经网络(RBFNN)。此外,已经使用遗传算法技术代替期望函数方法。已经进行了使用NSGA-II技术的多目标优化研究,以获得最佳性能旋风分离器的帕累托前沿。

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