Optimization design of multiphase pump impeller based on combined genetic algorithm and boundary vortex flux diagnosis

IF 3.4 3区 工程技术 Q1 MECHANICS 水动力学研究与进展:英文版 Pub Date : 2017-12-01 DOI:10.1016/S1001-6058(16)60816-8
Jin-ya Zhang (张金亚), Shu-jie Cai (蔡淑杰), Yong-jiang Li (李泳江), Xin Zhou (周鑫), Yong-xue Zhang (张永学)
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引用次数: 34

Abstract

A novel optimization design method for the multiphase pump impeller is proposed through combining the quasi-3D hydraulic design (Q3DHD), the boundary vortex flux (BVF) diagnosis, and the genetic algorithm (GA). The BVF diagnosis based on the Q3DHD is used to evaluate the objection function. Numerical simulations and hydraulic performance tests are carried out to compare the impeller designed only by the Q3DHD method and that optimized by the presented method. The comparisons of both the flow fields simulated under the same condition show that (1) the pressure distribution in the optimized impeller is more reasonable and the gas-liquid separation is more efficiently inhibited, (2) the scales of the gas pocket and the vortex decrease remarkably for the optimized impeller, (3) the unevenness of the BVF distributions near the shroud of the original impeller is effectively eliminated in the optimized impeller. The experimental results show that the differential pressure and the maximum efficiency of the optimized impeller are increased by 4% and 2.5%, respectively. Overall, the study indicates that the optimization design method proposed in this paper is feasible.

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基于遗传算法和边界涡通量诊断的多相泵叶轮优化设计
提出了一种结合准三维水力设计(Q3DHD)、边界涡通量(BVF)诊断和遗传算法(GA)的多相泵叶轮优化设计新方法。利用基于Q3DHD的BVF诊断对目标函数进行评价。对采用Q3DHD方法设计的叶轮与采用该方法优化后的叶轮进行了数值模拟和水力性能试验。结果表明:(1)优化后的叶轮内压力分布更合理,气液分离得到了更有效的抑制;(2)优化后的叶轮内气穴和涡流的尺度明显减小;(3)优化后的叶轮有效消除了原叶轮叶冠附近BVF分布的不均匀性。实验结果表明,优化后的叶轮压差和最大效率分别提高了4%和2.5%。总体而言,研究表明本文提出的优化设计方法是可行的。
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CiteScore
5.90
自引率
0.00%
发文量
1240
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