Hydrodynamic characteristics of the two-phase flow field at gas-evolving electrodes: numerical and experimental studies

Gas-evolving vertical electrode system is a typical electrochemical industrial reactor. Gas bubbles are released from the surfaces of the anode and affect the electrolyte flow pattern and even the cell performance. In the current work, the hydrodynamics induced by the air bubbles in a cold model was...

Full description

Bibliographic Details
Main Authors: Cheng-Lin Liu, Ze Sun, Gui-Min Lu, Jian-Guo Yu
Format: Article
Language:English
Published: The Royal Society 2018-01-01
Series:Royal Society Open Science
Subjects:
Online Access:https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.171255
id doaj-238ba2a956d048aca6a5316f393ccc1c
record_format Article
spelling doaj-238ba2a956d048aca6a5316f393ccc1c2020-11-25T03:06:28ZengThe Royal SocietyRoyal Society Open Science2054-57032018-01-015510.1098/rsos.171255171255Hydrodynamic characteristics of the two-phase flow field at gas-evolving electrodes: numerical and experimental studiesCheng-Lin LiuZe SunGui-Min LuJian-Guo YuGas-evolving vertical electrode system is a typical electrochemical industrial reactor. Gas bubbles are released from the surfaces of the anode and affect the electrolyte flow pattern and even the cell performance. In the current work, the hydrodynamics induced by the air bubbles in a cold model was experimentally and numerically investigated. Particle image velocimetry and volumetric three-component velocimetry techniques were applied to experimentally visualize the hydrodynamics characteristics and flow fields in a two-dimensional (2D) plane and a three-dimensional (3D) space, respectively. Measurements were performed at different gas rates. Furthermore, the corresponding mathematical model was developed under identical conditions for the qualitative and quantitative analyses. The experimental measurements were compared with the numerical results based on the mathematical model. The study of the time-averaged flow field, three velocity components, instantaneous velocity and turbulent intensity indicate that the numerical model qualitatively reproduces liquid motion. The 3D model predictions capture the flow behaviour more accurately than the 2D model in this study.https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.171255computational fluid dynamicsexperimental measurementsgas-evolving electrodesparticle image velocimetryvolumetric three-component velocimetry
collection DOAJ
language English
format Article
sources DOAJ
author Cheng-Lin Liu
Ze Sun
Gui-Min Lu
Jian-Guo Yu
spellingShingle Cheng-Lin Liu
Ze Sun
Gui-Min Lu
Jian-Guo Yu
Hydrodynamic characteristics of the two-phase flow field at gas-evolving electrodes: numerical and experimental studies
Royal Society Open Science
computational fluid dynamics
experimental measurements
gas-evolving electrodes
particle image velocimetry
volumetric three-component velocimetry
author_facet Cheng-Lin Liu
Ze Sun
Gui-Min Lu
Jian-Guo Yu
author_sort Cheng-Lin Liu
title Hydrodynamic characteristics of the two-phase flow field at gas-evolving electrodes: numerical and experimental studies
title_short Hydrodynamic characteristics of the two-phase flow field at gas-evolving electrodes: numerical and experimental studies
title_full Hydrodynamic characteristics of the two-phase flow field at gas-evolving electrodes: numerical and experimental studies
title_fullStr Hydrodynamic characteristics of the two-phase flow field at gas-evolving electrodes: numerical and experimental studies
title_full_unstemmed Hydrodynamic characteristics of the two-phase flow field at gas-evolving electrodes: numerical and experimental studies
title_sort hydrodynamic characteristics of the two-phase flow field at gas-evolving electrodes: numerical and experimental studies
publisher The Royal Society
series Royal Society Open Science
issn 2054-5703
publishDate 2018-01-01
description Gas-evolving vertical electrode system is a typical electrochemical industrial reactor. Gas bubbles are released from the surfaces of the anode and affect the electrolyte flow pattern and even the cell performance. In the current work, the hydrodynamics induced by the air bubbles in a cold model was experimentally and numerically investigated. Particle image velocimetry and volumetric three-component velocimetry techniques were applied to experimentally visualize the hydrodynamics characteristics and flow fields in a two-dimensional (2D) plane and a three-dimensional (3D) space, respectively. Measurements were performed at different gas rates. Furthermore, the corresponding mathematical model was developed under identical conditions for the qualitative and quantitative analyses. The experimental measurements were compared with the numerical results based on the mathematical model. The study of the time-averaged flow field, three velocity components, instantaneous velocity and turbulent intensity indicate that the numerical model qualitatively reproduces liquid motion. The 3D model predictions capture the flow behaviour more accurately than the 2D model in this study.
topic computational fluid dynamics
experimental measurements
gas-evolving electrodes
particle image velocimetry
volumetric three-component velocimetry
url https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.171255
work_keys_str_mv AT chenglinliu hydrodynamiccharacteristicsofthetwophaseflowfieldatgasevolvingelectrodesnumericalandexperimentalstudies
AT zesun hydrodynamiccharacteristicsofthetwophaseflowfieldatgasevolvingelectrodesnumericalandexperimentalstudies
AT guiminlu hydrodynamiccharacteristicsofthetwophaseflowfieldatgasevolvingelectrodesnumericalandexperimentalstudies
AT jianguoyu hydrodynamiccharacteristicsofthetwophaseflowfieldatgasevolvingelectrodesnumericalandexperimentalstudies
_version_ 1724673967548006400