叶轮
计算流体力学
扩散器(光学)
序列二次规划
离心泵
内部流动
灵敏度(控制系统)
控制理论(社会学)
工程类
数学优化
计算机科学
流量(数学)
二次规划
数学
机械工程
电子工程
物理
控制(管理)
光源
人工智能
航空航天工程
光学
几何学
作者
Hui Li,Yong Han,Weidong Shi,Taavi Tiganik,Ling Zhou
标识
DOI:10.1080/19942060.2022.2143901
摘要
It is important to reduce carbon emissions caused by the energy consumption of pumps. This study used a centrifugal pump with a specific speed of 89.6 as the research object to improve pump efficiency. The adaptive single-objective method was adopted as the automatic optimization tool with computational fluid dynamics, which includes optimal space-filling experimental design, Kriging response surface, and mixed-integer sequential quadratic programming. Eight geometric parameters from the meridian section and the plan of the impeller and diffuser were chosen as the design variables. The maximum efficiency under the design flow conditions was set as the optimization target. The Spearman correlation coefficient analysis results show that the sensitivity of each variable to efficiency and head. Compared with the original scheme, the optimal scheme showed a 2.75% increase in efficiency and a 1.17 m increase in head under the design flowrate. The internal flow field after optimization was also improved. An external characteristic experiment of the original and optimized pumps was performed to validate the numerical results. This automatic optimization method presents great potential to improve the hydraulic performance of centrifugal pumps at a lower cost.
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