Analysis of Solid-Liquid Two-Phase Flow in the Area of Rotor and Tailpipe

Author:

Xie Gengda1,Li Qifei12,Xin Lu1,Li Zhanyong1

Affiliation:

1. School of Energy and Power Engineering, Lanzhou University of Technology, Lanzhou 730050, China

2. State Key Laboratory of Fluid Machinery and Systems, Lanzhou 730050, China

Abstract

In order to study the internal flow state and wear law of a bulb cross-flow unit based on the particle non-uniform phase model in the Euler–Euler method, the solid-liquid two-phase flow condition of the hydraulic turbine under different solid-phase diameters, concentrations, and guide vane openings is calculated. The results show that (1) Under the same solid-phase physical parameters, the distribution of solid-phase concentration on the working surface of the blade is positively correlated with the opening degree of the guide vane, the concentration of the solid phase on the back of the blade is negatively correlated with the opening degree of the guide vane. (2) The addition of the solid phase changes the time-domain period of pressure pulsations at the rotor inlet and the tailpipe inlet under clear water conditions, and the tailpipe pressure pulsation coefficient decreases with increasing solid-phase concentration. The pressure pulsation coefficient increases with increasing solid-phase diameter and concentration at the inlet of the rotor. (3) Numerical simulation of the wear characteristics of cross-flow turbine by Finne’s wear model reveals that the two-phase flow condition with high concentration, large particle size and small openings has a more serious effect on turbine blade wear.

Funder

National Natural Science Foundation of China

Publisher

MDPI AG

Subject

Process Chemistry and Technology,Chemical Engineering (miscellaneous),Bioengineering

Reference24 articles.

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5. Peng, S. (2020). Numerical Simulation of Solid-Liquid Two-Phase Flow in Cross-Flow Turbine Based on Vortex Analysis. [Master’s Thesis, Xihua University].

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