Numerical analysis of pressure fluctuation in a multiphase rotodynamic pump with air–water two-phase flow
Pressure fluctuation in single-phase pumps has been studied widely, while less attention has been paid to research on multiphase pumps that are commonly used in the petroleum chemical industry. Therefore, this study investigates the pressure fluctuation for a multiphase rotodynamic pump handling air...
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2019-01-01
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doaj-d5b9cdcdb55e41c6b1806b6437f719a82021-02-02T05:05:50ZengEDP SciencesOil & Gas Science and Technology1294-44751953-81892019-01-01741810.2516/ogst/2018101ogst180294Numerical analysis of pressure fluctuation in a multiphase rotodynamic pump with air–water two-phase flowZhang WenwuYu ZhiyiLi YongjiangYang JianxinYe QingPressure fluctuation in single-phase pumps has been studied widely, while less attention has been paid to research on multiphase pumps that are commonly used in the petroleum chemical industry. Therefore, this study investigates the pressure fluctuation for a multiphase rotodynamic pump handling air–water two-phase flow. Simulations based on the Euler two-fluid model were carried out using ANSYS_CFX16.0 at different Inlet Gas Void Fractions (IGVFs) and various flow rate values. Under conditions of IGVF = 0% (pure water) and IGVF = 15%, the accuracy of the numerical method was tested by comparing the experimental data. The results showed that the rotor–stator interaction was still the main generation driver of pressure fluctuation in gas–liquid two-phase pumps. However, the fluctuation near the impeller outlet ascribe to the rotor–stator interaction was weakened by the complex gas–liquid flow. For the different IGVF, the variation trend of fluctuation was similar along the streamwise direction. That is, the fluctuation in the impeller increased before decreasing, while in the guide vane it decreased gradually. Also, the fluctuation in the guide vane was generally greater than for the impeller and the maximum amplitude appeared in the vicinity of guide vane inlet.https://ogst.ifpenergiesnouvelles.fr/articles/ogst/full_html/2019/01/ogst180294/ogst180294.html |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Zhang Wenwu Yu Zhiyi Li Yongjiang Yang Jianxin Ye Qing |
spellingShingle |
Zhang Wenwu Yu Zhiyi Li Yongjiang Yang Jianxin Ye Qing Numerical analysis of pressure fluctuation in a multiphase rotodynamic pump with air–water two-phase flow Oil & Gas Science and Technology |
author_facet |
Zhang Wenwu Yu Zhiyi Li Yongjiang Yang Jianxin Ye Qing |
author_sort |
Zhang Wenwu |
title |
Numerical analysis of pressure fluctuation in a multiphase rotodynamic pump with air–water two-phase flow |
title_short |
Numerical analysis of pressure fluctuation in a multiphase rotodynamic pump with air–water two-phase flow |
title_full |
Numerical analysis of pressure fluctuation in a multiphase rotodynamic pump with air–water two-phase flow |
title_fullStr |
Numerical analysis of pressure fluctuation in a multiphase rotodynamic pump with air–water two-phase flow |
title_full_unstemmed |
Numerical analysis of pressure fluctuation in a multiphase rotodynamic pump with air–water two-phase flow |
title_sort |
numerical analysis of pressure fluctuation in a multiphase rotodynamic pump with air–water two-phase flow |
publisher |
EDP Sciences |
series |
Oil & Gas Science and Technology |
issn |
1294-4475 1953-8189 |
publishDate |
2019-01-01 |
description |
Pressure fluctuation in single-phase pumps has been studied widely, while less attention has been paid to research on multiphase pumps that are commonly used in the petroleum chemical industry. Therefore, this study investigates the pressure fluctuation for a multiphase rotodynamic pump handling air–water two-phase flow. Simulations based on the Euler two-fluid model were carried out using ANSYS_CFX16.0 at different Inlet Gas Void Fractions (IGVFs) and various flow rate values. Under conditions of IGVF = 0% (pure water) and IGVF = 15%, the accuracy of the numerical method was tested by comparing the experimental data. The results showed that the rotor–stator interaction was still the main generation driver of pressure fluctuation in gas–liquid two-phase pumps. However, the fluctuation near the impeller outlet ascribe to the rotor–stator interaction was weakened by the complex gas–liquid flow. For the different IGVF, the variation trend of fluctuation was similar along the streamwise direction. That is, the fluctuation in the impeller increased before decreasing, while in the guide vane it decreased gradually. Also, the fluctuation in the guide vane was generally greater than for the impeller and the maximum amplitude appeared in the vicinity of guide vane inlet. |
url |
https://ogst.ifpenergiesnouvelles.fr/articles/ogst/full_html/2019/01/ogst180294/ogst180294.html |
work_keys_str_mv |
AT zhangwenwu numericalanalysisofpressurefluctuationinamultiphaserotodynamicpumpwithairwatertwophaseflow AT yuzhiyi numericalanalysisofpressurefluctuationinamultiphaserotodynamicpumpwithairwatertwophaseflow AT liyongjiang numericalanalysisofpressurefluctuationinamultiphaserotodynamicpumpwithairwatertwophaseflow AT yangjianxin numericalanalysisofpressurefluctuationinamultiphaserotodynamicpumpwithairwatertwophaseflow AT yeqing numericalanalysisofpressurefluctuationinamultiphaserotodynamicpumpwithairwatertwophaseflow |
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