Analysis of flow energy dissipation of a two‐stage storage pump based on entropy generation theory

Author:

Chen Taiping12ORCID,Wei Xianzhu1,Bie Rushan2,Li Yang1,Xu Bin1,Wang Wenbo1,Liu Yongxin13

Affiliation:

1. State Key Laboratory of Hydro‐Power Equipment Harbin Institute of Large Electrical Machinery Harbin China

2. School of Energy Science and Engineering Harbin Institute of Technology Harbin China

3. College of Power and Energy Engineering, Harbin Harbin Engineering University Harbin China

Abstract

AbstractA hybrid power station comprising storage pump units and conventional hydropower components holds the potential to enhance the operational flexibility of basin hydroelectric regulation. The storage pumps must possess significant power capacity and operate with high efficiency to ensure viable energy storage. This study investigates the energy dissipation within a two‐stage storage pump using entropy generation theory. The numerical solution of flow energy dissipation (FED) components was obtained for various flow rates using the steady‐state single‐phase shear stress transport kω turbulence model. Results indicate that the return channel contributes the most to FED generation within the entire passage, with the FED proportion decreasing from 66.7% to 41.3% as the flow rate increases from 0.5QBEP to 1.2QBEP. The FED generation percentage from the runners increases from 10.4% to 46.9% with increasing flow rate, ranking second. The FED generation percentage attributed from the spiral case ranges from 10.3% to 16.7%, ranking third. Losses from the draft tube are found to be negligible. Flow pattern analysis reveals that FED generation primarily occurs at the junction of inferior flow (flow separation and vortex flow) and the main flow, where significant velocity gradients exist.

Publisher

Wiley

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