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Experimental study of the flow field of a high head model pump turbine based on PIV technique

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Abstract

Pumped storage units are the main parts in China’s power construction, as a hot issue concerned by the industry. The pump turbine involves the two-way flows and a multiple condition operation, and its operation flow pattern is very complex. The particle image velocimetry (PIV) is a very effective test technique to determine the internal flow field of pump turbines. This paper discusses the key problems of the pump turbine, based on the PIV experiments under typical conditions of the pump turbine, especially for problems such as the S-shape problem, the hump problem, the pressure fluctuation problem and the cavitation problem. In the internal flow fields under typical conditions are determined. The vortices induced and their development are observed in the PIV test. The flow phenomenon is shown at each operating point. The typical problems of the pump turbine are closely related to the vortex distribution in the internal flow field. From the PIV test results under several working conditions and from the comparisons between the optimal condition and the part load condition, it is seen that the vortex distributions are very different. Vortices at the vane-less area between the guide vane and the runner are closely related to the strong pressure pulsation, the first hump and the S-shape curve. From the PIV results of the cavitation working points, it is seen that the flow angle is changed in the vane-less region and the runner leading edge because of the cavitation bubbles and that the flow angle deviates from the optimal setting angle. From the computational fluid dynamics (CFD) result of the second hump working points, it is concluded that the vortex shedding on the runner leading edge is the main cause of the second hump.

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References

  1. China Electricity Council. Annual development report of China’s power industry [M]. Beijing: China Building Materials Industry Press, 2019(in Chinese).

    Google Scholar 

  2. Zuo Z. G., Liu S. H., Sun Y. K. et al. Pressure fluctuations in the vane-less space of high-head pump-turbines-A review [J]. Renewable and Sustainable Energy Reviews, 2015, 41(1): 965–974.

    Article  Google Scholar 

  3. Hasmatuchi V., Farhat M., Roth S. et al. Experimental evidence of rotating stall in a pump-turbine at off-design conditions in generating mode [J]. Journal of Fluids Engineering, 2011, 133(5): 051104.

    Article  Google Scholar 

  4. Ran H., Luo X. Experimental study of instability characteristics in pump turbines [J]. Journal of Hydraulic Research, 2018, 56(6): 871–876.

    Article  Google Scholar 

  5. Xia L. S., Cheng Y. G., Zhang X. X. et al. Numerical analysis of rotating stall instabilities of a pump turbine in pump mode [J]. IOP Conference Series: Earth and Environmental Science, 2014, 22(3): 032020.

    Article  Google Scholar 

  6. Zuo Z., Liu S. Flow-induced Instabilities in pump-turbines in China [J]. Engineering, 2017, 3(4): 504–511.

    Article  Google Scholar 

  7. Egusquiza E., Valero C., Huang X. X. et al. Failure investigation of a large pump-turbine runner [J]. Engineering Failure Analysis, 2012, 23(7): 27–34.

    Article  Google Scholar 

  8. Wang L. Q., Yin J. L., Jiao L. et al. Numerical investigation on the “S” characteristics of a reduced pump turbine model [J]. Science China Technological Sciences, 2011, 54(5): 1259–1266.

    Article  Google Scholar 

  9. Zhang Y. N., Liu K. H., Li J. W. et al. Analysis of the vortices in the inner flow of reversible pump turbine with the new omega vortex identification method [J]. Journal of Hydrodynamics, 2018, 30(3): 463–469.

    Article  Google Scholar 

  10. Svennberg U., Asnaghi A., Gustafsson R. et al. Experimental analysis of tip vortex cavitation mitigation by controlled surface roughness [J]. Journal of Hydrodynamics, 2020, 32(6): 1059–1070.

    Article  Google Scholar 

  11. Jiang X. Y., Lee C., Smith C. R. et al. Experimental study on low-speed streaks in a turbulent boundary layer at low Reynolds number [J]. Journal of Fluid Mechanics, 2020, 903: A6.

    Article  Google Scholar 

  12. Li Z. W., Huai W. X., Qian Z. D. Study on the flow field and concentration characteristics of the multiple tandem jets in cross flow [J]. Science China Technological Sciences, 2012, 55(10): 2778–2788.

    Article  Google Scholar 

  13. Huai W. X., Wang Z. W., Qian Z. D. et al. Numerical simulation of sandy bed erosion by 2D vertical jet [J]. Science China Technological Sciences, 2011, 54(12): 3265–3274.

    Article  Google Scholar 

  14. Miyabe M, Furukawa A, Maeda H. et al. A behavior of the diffuser rotating stall in a low specific speed mixed-flow pump [J]. Turbomachinery, 2007, 35(2): 113–121.

    Google Scholar 

  15. Ran H. J., Luo X. W., Zhu L. et al. Experimental study of the pressure fluctuations in a pump turbine at large partial flow conditions [J]. Chinese Journal of Mechanical Engineering, 2012, 25(6): 1205–1209.

    Article  Google Scholar 

  16. Wang Z. W., Zhou L. J. Rotor stator interaction induced unsteady flow simulation [J]. Journal of Tsinghua University (Science and Technology), 2001, 41(10): 74–77(in Chinese).

    Google Scholar 

  17. Zobeiri A., Kueny J., Avellan F. Pump-turbine rotor-stator interactions in generating mode: pressure fluctuation in distributor channel [C]. 23rd IAHR Symposium on Hydraulic Machinery and System, Yokohama, Japan, 2006.

  18. Backman A. G. CFD validation of pressure fluctuations in a pump turbine [D]. Master Thesis, Lulea, Sweden: Lulea University of Technology, 2008.

    Google Scholar 

  19. Yan J., Seidel U., Koutnik J. Numerical simulation of hydrodynamics in a pump-turbine at off-design operating conditions in turbine mode [C]. 26th IAHR Symposium on Hydraulic Machinery and System, Beijing, China, 2012.

  20. Widmer C., Staubli T., Ledergerber N. Unstable characteristics and rotating stall in turbine brake operation of pump-turbines [J]. Journal of Fluids Engineering, 2011, 133(4): 041101.

    Article  Google Scholar 

  21. Yin J. L., Liu J. T., Wang L. Q. Prediction of pressure fluctuations of pump turbine under off design condition in pump mode [J] Journal of Engineering Thermophysics, 2011, 32(7): 1141–1144.

    Google Scholar 

  22. Xiao Y. X., Sun D. G., Wang Z. W. Numerical analysis of unsteady flow behavior and pressure pulsation in pump turbine with misaligned guide vanes [C]. 26th IAHR Symposium on Hydraulic Machinery and System, Beijing, China, 2012.

  23. Liu D. M., Zheng J. S., Shi Q. H. Numerical simulation on the “S” characteristics and pressure fluctuation of reduced pump-turbine at start-up condition [C]. 26th IAHR Symposium on Hydraulic Machinery and System, Beijing, China, 2012.

  24. Han C. Z., Xu S., Cheng H. Y. et al. LES method of the tip clearance vortex cavitation in a propelling pump with special emphasis on the cavitation-vortex interaction [J]. Journal of Hydrodynamics, 2020, 32(6): 1212–1216.

    Article  Google Scholar 

  25. Trieu C. T., Xu S., Long X. P. et al. Prediction of the precessing vortex core in the Francis-99 draft tube under off-design conditions by using Liutex/Rortex method [J]. Journal of Hydrodynamics, 2020, 32(3): 623–628.

    Article  Google Scholar 

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Acknowledgement

This work was supported by the China Postdoctoral Science Foundation (Grant No. 2020M673568XB), the Deyang Science and Technology Support Program (Grant No. 2018CKJ002).

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Correspondence to De-min Liu.

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Project supported by the National Natural Science Foundation of China (Grant No. 51279172).

Biography

De-min Liu (1982-), Male, Ph. D., Professor

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Liu, Dm., Xu, Wl. & Zhao, Yz. Experimental study of the flow field of a high head model pump turbine based on PIV technique. J Hydrodyn 33, 1045–1055 (2021). https://doi.org/10.1007/s42241-021-0092-y

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  • DOI: https://doi.org/10.1007/s42241-021-0092-y

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