Analysis of flow and phase interaction characteristics in a gas-liquid two-phase pump

To analyze the characteristics of internal flow and phase interaction in a gas-liquid two-phase pump, the influence of Inlet Gas Void Fraction (IGVF), discharge coefficient, and medium viscosity were investigated using medium combinations of air-water and air-crude. Simulations were performed using...

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Main Authors: Zhang Wenwu, Yu Zhiyi, Li Yongjiang
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:Oil & Gas Science and Technology
Online Access:https://doi.org/10.2516/ogst/2018072
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spelling doaj-b05691a21f0546078a8e1b83a668390a2021-02-02T00:15:55ZengEDP SciencesOil & Gas Science and Technology1294-44751953-81892018-01-01736910.2516/ogst/2018072ogst180162Analysis of flow and phase interaction characteristics in a gas-liquid two-phase pumpZhang WenwuYu ZhiyiLi YongjiangTo analyze the characteristics of internal flow and phase interaction in a gas-liquid two-phase pump, the influence of Inlet Gas Void Fraction (IGVF), discharge coefficient, and medium viscosity were investigated using medium combinations of air-water and air-crude. Simulations were performed using ANSYS_CFX at different IGVFs and various values of discharge coefficient. Structured grid for the full flow passage was generated using ICEM_CFD and TurboGrid. Under conditions of IGVF = 0% (pure water) and IGVF = 15%, the reliability of numerical method was proved by means of the comparison with the experimental data of external characteristic. The results for air-water combination showed a uniform gas distribution in the inlet pipe, and formation of a stratified structure in the outlet pipe. The gas in impeller gathered at the hub because of the rotation of the impeller, also, the interphase forces increased with the increased IGVF. For the two medium combinations, the drag force was the largest interphase force, followed by added mass and lift forces, and then the turbulent dispersion force was the least, which can be neglected. Because of the larger viscosity of crude than that of water, the variation trend of interphase forces in the impeller is relatively smooth along the flow direction when the medium combination was air-crude.https://doi.org/10.2516/ogst/2018072
collection DOAJ
language English
format Article
sources DOAJ
author Zhang Wenwu
Yu Zhiyi
Li Yongjiang
spellingShingle Zhang Wenwu
Yu Zhiyi
Li Yongjiang
Analysis of flow and phase interaction characteristics in a gas-liquid two-phase pump
Oil & Gas Science and Technology
author_facet Zhang Wenwu
Yu Zhiyi
Li Yongjiang
author_sort Zhang Wenwu
title Analysis of flow and phase interaction characteristics in a gas-liquid two-phase pump
title_short Analysis of flow and phase interaction characteristics in a gas-liquid two-phase pump
title_full Analysis of flow and phase interaction characteristics in a gas-liquid two-phase pump
title_fullStr Analysis of flow and phase interaction characteristics in a gas-liquid two-phase pump
title_full_unstemmed Analysis of flow and phase interaction characteristics in a gas-liquid two-phase pump
title_sort analysis of flow and phase interaction characteristics in a gas-liquid two-phase pump
publisher EDP Sciences
series Oil & Gas Science and Technology
issn 1294-4475
1953-8189
publishDate 2018-01-01
description To analyze the characteristics of internal flow and phase interaction in a gas-liquid two-phase pump, the influence of Inlet Gas Void Fraction (IGVF), discharge coefficient, and medium viscosity were investigated using medium combinations of air-water and air-crude. Simulations were performed using ANSYS_CFX at different IGVFs and various values of discharge coefficient. Structured grid for the full flow passage was generated using ICEM_CFD and TurboGrid. Under conditions of IGVF = 0% (pure water) and IGVF = 15%, the reliability of numerical method was proved by means of the comparison with the experimental data of external characteristic. The results for air-water combination showed a uniform gas distribution in the inlet pipe, and formation of a stratified structure in the outlet pipe. The gas in impeller gathered at the hub because of the rotation of the impeller, also, the interphase forces increased with the increased IGVF. For the two medium combinations, the drag force was the largest interphase force, followed by added mass and lift forces, and then the turbulent dispersion force was the least, which can be neglected. Because of the larger viscosity of crude than that of water, the variation trend of interphase forces in the impeller is relatively smooth along the flow direction when the medium combination was air-crude.
url https://doi.org/10.2516/ogst/2018072
work_keys_str_mv AT zhangwenwu analysisofflowandphaseinteractioncharacteristicsinagasliquidtwophasepump
AT yuzhiyi analysisofflowandphaseinteractioncharacteristicsinagasliquidtwophasepump
AT liyongjiang analysisofflowandphaseinteractioncharacteristicsinagasliquidtwophasepump
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