The Splitter Blade Pump–Turbine in Pump Mode: The Hump Characteristic and Hysteresis Effect Flow Mechanism

Author:

Dong Guanghe1,Luo Zhumei1,Guo Tao2ORCID,Zhang Xiaoxu1,Shan Rong1,Dai Linsheng1

Affiliation:

1. Department of Energy and Power Engineering, Faculty of Metallurgy and Energy Engineering, Kunming University of Science and Technology, Kunming 650093, China

2. Department of Engineering Mechanics, Faculty of Civil Engineering and Mechanics, Kunming University of Science and Technology, Kunming 650500, China

Abstract

This study focuses on the splitter blade pump–turbine as the research object to analyze the problems of hump characteristics and the hysteresis effect. We simulated the operation of the pump condition with small opening of the guide vane, analyzed the hydraulic loss by using the entropy production theory and entropy wall function, and investigated the study of internal flow transfer characteristics. In this paper, it was first verified that the maximum error of the energy loss calculated by the pressure method and the entropy production method was less than 6% for the working zone. From the quantified energy loss results, a significant instability feature was observed in the 0.65 QBEP–0.9 QBEP operating interval, accompanied by the phenomenon of the non-overlapping of the characteristic curves. The results show that the hump characteristic with hysteresis effect also exists in the splitter blade pump–turbine. The percentage of energy loss in the hump zone is in descending order of runner, guide vanes, spiral casing, and draft tube, but this changes again at low flow rates. By analyzing the high-entropy production region, it was found that the high-hydraulic-loss region is mainly distributed at the trailing edge of the long blade in the vane-less space, which is different from the traditional runner.

Funder

National Natural Science Foundation of China

Ranking of the top of the list for science and technology projects of Yunnan Province

Publisher

MDPI AG

Reference40 articles.

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2. Lu, G.C. (2018). Investigations on the Influence of the Flow Separation in Guide Vane Channels on the Positive Slope on the Pump Performance Curve in a Pump-Turbine. [Ph.D. Thesis, Tsinghua University].

3. Jese, U., Fortes-Patella, R., and Dular, M. (2015, January 26–31). Numerical study of Pump-turbine instabilities under pumping mode off-design conditions. Proceedings of the ASME-JSME-KSME Joint Fluids Engineering Conference, Seoul, Republic of Korea.

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