Experimental and Numerical Study of Hydraulic Characteristics and Pressurization Deterioration Mechanism of a Three-Stage Mixed-Flow Electrical Submersible Pump Under Gas-Liquid Condition

Author:

Dai Xiaoyu1,Xu Qiang1,Yang Chenyu1,Su Xiaobin1,Chang Liang2,Guo Liejin13

Affiliation:

1. State Key Laboratory of Multiphase Flow in Power Engineering, Xi'an Jiaotong University , No.28, West Xianning Road, Xi'an, Shaanxi 710049, China

2. Heat Management Department, Shanghai Institute of Satellite Engineering , No.251, Huaning Road, Minhang District, Shanghai 201100, China

3. Xi'an Jiaotong University

Abstract

Abstract Electrical submersible pump (ESP) is extensively utilized in industrial sectors such as petroleum, chemical, and nuclear energy. However, ESPs experience pressurization deterioration due to the high gas volume fraction (GVF), resulting in the pressurization failure. In this paper, a three-stage mixed-flow ESP with closed impeller structure is detailed analysis. The interstage hydraulic characteristics and pressurization deterioration mechanism of the mixed-flow ESP are investigated at various rotational speeds and inlet conditions by combining experimental and simulation. The population balance model (PBM) and renormalization group (RNG) k − ε model are employed. As the liquid flowrate increases, the ESP experiences a “three-stage” downward trend in pressurization. It is discovered that the first booster stage has a lower inflow velocity and flow separation degree compared to the subsequent booster stages, resulting in a greater liquid-phase pressurization capacity. The gas–liquid pressurization exhibits a wave-shaped downward trend due to significant deterioration in stage-wise pressurization when the liquid flowrate is low. Once the inlet gas volume fraction (IGVF) reaches the first critical GVF, the gas aggregates on the impeller's suction surface are removed at the impeller outlet, creating an annular air mass, which creates a chaotic vortex absorbing the fluids' kinetic energy.

Funder

National Natural Science Foundation of China

Publisher

ASME International

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