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Analysis of the vortices in the inner flow of reversible pump turbine with the new omega vortex identification method

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【作者】 张宇宁刘凯华李金伟冼海珍杜小泽

【Author】 Yu-ning Zhang;Kai-hua Liu;Jin-wei Li;Hai-zhen Xian;Xiao-ze Du;Key Laboratory of Fluid and Power Machinery, (Ministry of Education), Xihua University;Key Laboratory of Condition Monitoring and Control for Power Plant Equipment (Ministry of Education), North China Electric Power University;Beijing South-to-North Water Diversion Tuancheng Lake Management Office;China Institute of Water Resources and Hydropower Research;

【机构】 Key Laboratory of Fluid and Power Machinery, (Ministry of Education), Xihua UniversityKey Laboratory of Condition Monitoring and Control for Power Plant Equipment (Ministry of Education), North China Electric Power UniversityBeijing South-to-North Water Diversion Tuancheng Lake Management OfficeChina Institute of Water Resources and Hydropower Research

【摘要】 Reversible pump turbines are widely employed in the pumped hydro energy storage power plants. The frequent shifts among various operational modes for the reversible pump turbines pose various instability problems, e.g., the strong pressure fluctuation, the shaft swing, and the impeller damage. The instability is related to the vortices generated in the channels of the reversible pump turbines in the generating mode. In the present paper, a new omega vortex identification method is applied to the vortex analysis of the reversible pump turbines. The main advantage of the adopted algorithm is that it is physically independent of the selected values for the vortex identification in different working modes. Both weak and strong vortices can be identified by setting the same omega value in the whole passage of the reversible pump turbine. Five typical modes(turbine mode, runaway mode, turbine brake mode, zero-flow-rate mode and reverse pump mode) at several typical guide vane openings are selected for the analysis and comparisons. The differences between various modes and different guide vane openings are compared both qualitatively in terms of the vortex distributions and quantitatively in terms of the areas of the vortices in the reversible pump turbines. Our findings indicate that the new omega method could be successfully applied to the vortex identification in the reversible pump turbines.

【Abstract】 Reversible pump turbines are widely employed in the pumped hydro energy storage power plants. The frequent shifts among various operational modes for the reversible pump turbines pose various instability problems, e.g., the strong pressure fluctuation, the shaft swing, and the impeller damage. The instability is related to the vortices generated in the channels of the reversible pump turbines in the generating mode. In the present paper, a new omega vortex identification method is applied to the vortex analysis of the reversible pump turbines. The main advantage of the adopted algorithm is that it is physically independent of the selected values for the vortex identification in different working modes. Both weak and strong vortices can be identified by setting the same omega value in the whole passage of the reversible pump turbine. Five typical modes(turbine mode, runaway mode, turbine brake mode, zero-flow-rate mode and reverse pump mode) at several typical guide vane openings are selected for the analysis and comparisons. The differences between various modes and different guide vane openings are compared both qualitatively in terms of the vortex distributions and quantitatively in terms of the areas of the vortices in the reversible pump turbines. Our findings indicate that the new omega method could be successfully applied to the vortex identification in the reversible pump turbines.

【基金】 Project supported by the National Key R&D Program of China(Project No.2018YFB0604304-04);the National Natural Science Foundation of China(Grant No.51506051)
  • 【文献出处】 Journal of Hydrodynamics ,水动力学研究与进展B辑(英文版) , 编辑部邮箱 ,2018年03期
  • 【分类号】TV136.1
  • 【被引频次】39
  • 【下载频次】131
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