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Multi-objective Optimization design of the multiphase pump boosting cell

机译:多相泵增压单元的多目标优化设计

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Based on the boosting cell parameters of the third generation YQH-100 multiphase pump independently developed, the orthogonal experimental design was used to design the optimization scheme, using relative head and efficiency as the evaluation targets for the multi-objective optimization design. The software FLUENT was used to predict relative head and efficiency of the multiphase pump. BP neural networks and PSO-BP neural networks were adopted to construct the response relation between the design variable and the objective function. The predict results show that the prediction performance of PSO-BP neural network was much better than BP neural network. A multi-attribute decision making method based on fuzzy preference information was used to select the best multi-objective solution. The optimization results show that relative head and efficiency of the multiphase pump were increased by 0.81 % and 0.77%, respectively.
机译:基于自主研发的第三代YQH-100多相泵的增压单元参数,以相对扬程和效率为评价指标,采用正交试验设计设计优化方案。 FLUENT软件用于预测多相泵的相对压头和效率。采用BP神经网络和PSO-BP神经网络构建设计变量与目标函数之间的响应关系。预测结果表明,PSO-BP神经网络的预测性能远优于BP神经网络。采用基于模糊偏好信息的多属性决策方法,选择最佳的多目标解决方案。优化结果表明,多相泵的相对扬程和效率分别提高了0.81%和0.77%。

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