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Hydraulic Optimization of Multiphase Pump Based on CFD and Genetic Algorithm

초록

영어

Impellers of helicon-axial multiphase pump are optimized based on CFD and genetic algorithm. The method mainly includes: CFD numerical calculation, to establish nonlinear relation through neural network, and genetic algorithm optimization extreme. Firstly, the profile of blades is parametric by spline surface and Choose 12 control points as optimization variables. Then, every optimization variable is given optimal dimension. Finally, sample database is got by using standard L27_3_13 orthogonal design table. Next, output values are got by modeling every sample, meshing generation and using CFD numerical calculation. Train neural networks through the database; thus the nonlinear relation between the blade parameter and pump performance parameters is built by applying the nonlinear fitting ability of BP neural networks. Regard the trained neural network as a fitness function of the genetic algorithm and use the characteristic of nonlinear global optimization of genetic algorithm to optimize the multiphase pump. Optimization result shows that the hydraulic efficiency of the multiphase pump is increased by 1.91%.

목차

Abstract
 1. Introduction
 2. Optimization Design Process
 3. Impellers Parameterization
 4. CFD Numerical Calculation
  4.1. Model Establishment
  4.2. Governing Equation
  4.3. Governing Equation
  4.4. Two-Phase Flow Model, Equations and Boundary Condition
 5. Nonlinear Fitting of BP Neural Network
 6. Comparative Analysis of Optimal Solutions
 7. Conclusions
 References

저자정보

  • Hu Hao School of Electric Power, North China University of Water Resources and Electric Power, Henan 450011, China, North China Electric Power University, Key Laboratory of CMCPPE Ministry of Education, Beijing 102206, China
  • Li Xinkai North China Electric Power University, Key Laboratory of CMCPPE Ministry of Education, Beijing 102206, China
  • Gu Bo School of Electric Power, North China University of Water Resources and Electric Power, Henan 450011, China

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