Volute Optimization Based on Self-Adaption Kriging Surrogate Model

IF 2.3 4区 工程技术 Q3 ENGINEERING, CHEMICAL International Journal of Chemical Engineering Pub Date : 2022-12-01 DOI:10.1155/2022/6799201
Fannian Meng, Zi-An Zhang, Liang-Yuan Wang
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Abstract

Optimizing the volute performance can effectively improve the efficiency of a centrifugal fan by changing the volute geometric parameter, so the self-adaption Kriging surrogate model is used to optimize the volute geometric parameter. Firstly, volute radius Rd, the radius of tongue r, and outlet angle of the volute θ are selected as the optimization parameters of the volute, and latin hypercube sampling is used to configure the initial sample points, the corresponding three-dimensional aerodynamic model under each sample point configuration is constructed. CFD software is used to simulate the aerodynamic efficiency and total pressure of the centrifugal fan under each initial sample point configuration. Secondly, the Kriging surrogate model of initial sample point configuration parameters, aerodynamic efficiency, and total pressure of volute is constructed, and sample points are added by expectation improvement (EI) method to improve the fitting accuracy of Kriging surrogate model. Finally, the high-precision Kriging surrogate model is used as the fitness function of NSGA-II algorithm to find the Pareto optimal solution under multiobjective optimization, and the optimization target are aero dynamical efficiency and total pressure. The rationality of the above method is verified by optimizing the 9–19.4A type centrifugal fan volute. The efficiency of the optimized fan under working conditions is increased by 1%, and the total pressure under working conditions is not reduced. The optimized volute can effectively improve the overall performance of the centrifugal fan. This study is helpful to promote the application of numerical optimization design method in the volute of centrifugal fan. It provides reference for the optimization design of high-performance centrifugal fan.
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基于自适应Kriging代理模型的蜗壳优化
通过改变蜗壳几何参数来优化蜗壳性能可以有效地提高离心风机的效率,因此采用自适应Kriging代理模型对蜗壳几何参数进行优化。首先选取蜗壳半径Rd、隔舌半径r和蜗壳出口角θ作为蜗壳的优化参数,采用拉丁超立方采样对初始采样点进行配置,构建各采样点配置下的三维气动模型。利用CFD软件模拟了各初始样点配置下离心风机的气动效率和总压。其次,构建初始样点构型参数、气动效率和蜗壳总压的Kriging代理模型,并通过期望改进(EI)法添加样点,提高Kriging代理模型的拟合精度;最后,利用高精度Kriging代理模型作为NSGA-II算法的适应度函数,寻找多目标优化条件下的Pareto最优解,优化目标为气动效率和总压力。通过对9-19.4A型离心风机蜗壳的优化,验证了上述方法的合理性。优化后的风机在工况下效率提高1%,且工况下总压力不降低。优化后的蜗壳能有效提高离心风机的整体性能。该研究有助于促进数值优化设计方法在离心风机蜗壳中的应用。为高性能离心风机的优化设计提供参考。
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来源期刊
International Journal of Chemical Engineering
International Journal of Chemical Engineering Chemical Engineering-General Chemical Engineering
CiteScore
4.00
自引率
3.70%
发文量
95
审稿时长
14 weeks
期刊介绍: International Journal of Chemical Engineering publishes papers on technologies for the production, processing, transportation, and use of chemicals on a large scale. Studies typically relate to processes within chemical and energy industries, especially for production of food, pharmaceuticals, fuels, and chemical feedstocks. Topics of investigation cover plant design and operation, process design and analysis, control and reaction engineering, as well as hazard mitigation and safety measures. As well as original research, International Journal of Chemical Engineering also publishes focused review articles that examine the state of the art, identify emerging trends, and suggest future directions for developing fields.
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