CFD Simulations of an Air-Water Bubble Column: Effect of Luo Coalescence Parameter and Breakup Kernels

In this work, CFD simulations of an air-water bubbling column were performed and validated with experimental data. The superficial gas velocities used for the experiments were 0.019 and 0.038 m/s and were considered as an homogeneous regime. The former involves simpler physics when compared to a het...

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Main Authors: Alizeb Hussain Syed, Micael Boulet, Tommaso Melchiori, Jean-Michel Lavoie
Format: Article
Language:English
Published: Frontiers Media S.A. 2017-09-01
Series:Frontiers in Chemistry
Subjects:
Online Access:http://journal.frontiersin.org/article/10.3389/fchem.2017.00068/full
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spelling doaj-8f98f4a9e2d64952b6935d89eac169fb2020-11-24T21:04:40ZengFrontiers Media S.A.Frontiers in Chemistry2296-26462017-09-01510.3389/fchem.2017.00068287079CFD Simulations of an Air-Water Bubble Column: Effect of Luo Coalescence Parameter and Breakup KernelsAlizeb Hussain Syed0Micael Boulet1Tommaso Melchiori2Jean-Michel Lavoie3Industrial Research Chair on Cellulosic Ethanol and Biocommodities, University of SherbrookeSherbrooke, QC, CanadaEnerkemSherbrooke, QC, CanadaIndustrial Research Chair on Cellulosic Ethanol and Biocommodities, University of SherbrookeSherbrooke, QC, CanadaIndustrial Research Chair on Cellulosic Ethanol and Biocommodities, University of SherbrookeSherbrooke, QC, CanadaIn this work, CFD simulations of an air-water bubbling column were performed and validated with experimental data. The superficial gas velocities used for the experiments were 0.019 and 0.038 m/s and were considered as an homogeneous regime. The former involves simpler physics when compared to a heterogeneous regime where the superficial velocities are higher. In order to simulate the system, a population balance model (PBM) was solved numerically using a discrete method and a closure kernels involving the Luo coalescence model as well as two different breakup models: Luo's and Lehr's. For the multi-phase calculations, an eulerian framework was selected and the interphase momentum transfer included drag, lift, wall lubrication, and turbulent dispersion terms. A sensitivity analysis was performed on a Luo coalescence kernel by changing the coalescence parameter (c0) from 1.1 to 0.1 and results showed that the radial profiles of gas holdup and axial liquid velocity were significantly affected by such parameter. From the simulation results, the main conclusions were: (a) A combination of the Luo coalescence and Luo breakup kernels (Luo-Luo) combined with a decreasing value of c0 improves the gas holdup profiles as compared to empirical values. However, at the lowest value of c0 investigated in this work, the axial liquid velocity deteriorates with regards to experimental data when using a superficial gas velocity of 0.019 m/s. (b) A combination of the Luo coalescence and Lehr breakup models (Luo-Lehr) was shown to improve the gas holdup values with experimental data when compared to the Luo-Luo kernels. However, as c0 decreases, the Luo-Lehr models underestimate the axial liquid velocity profiles with regards to empirical values. (c) A first and second order numerical schemes allowed predicting similar radial profiles of gas holdup and axial liquid velocity. (d) The mesh sensitivity results show that a 3 mm mesh size can be considered as reasonable for simulating experimental data. (e) The inclusion of wall lubrication parameter was found to be significant, although only when using finer meshing. In addition, it allows an improvement of the axial liquid velocity at the core of the bubble column.http://journal.frontiersin.org/article/10.3389/fchem.2017.00068/fullpopulation balance model (PBM)bubble size distributiontime-average radial profiles of holdup and axial liquid velocitybubble column
collection DOAJ
language English
format Article
sources DOAJ
author Alizeb Hussain Syed
Micael Boulet
Tommaso Melchiori
Jean-Michel Lavoie
spellingShingle Alizeb Hussain Syed
Micael Boulet
Tommaso Melchiori
Jean-Michel Lavoie
CFD Simulations of an Air-Water Bubble Column: Effect of Luo Coalescence Parameter and Breakup Kernels
Frontiers in Chemistry
population balance model (PBM)
bubble size distribution
time-average radial profiles of holdup and axial liquid velocity
bubble column
author_facet Alizeb Hussain Syed
Micael Boulet
Tommaso Melchiori
Jean-Michel Lavoie
author_sort Alizeb Hussain Syed
title CFD Simulations of an Air-Water Bubble Column: Effect of Luo Coalescence Parameter and Breakup Kernels
title_short CFD Simulations of an Air-Water Bubble Column: Effect of Luo Coalescence Parameter and Breakup Kernels
title_full CFD Simulations of an Air-Water Bubble Column: Effect of Luo Coalescence Parameter and Breakup Kernels
title_fullStr CFD Simulations of an Air-Water Bubble Column: Effect of Luo Coalescence Parameter and Breakup Kernels
title_full_unstemmed CFD Simulations of an Air-Water Bubble Column: Effect of Luo Coalescence Parameter and Breakup Kernels
title_sort cfd simulations of an air-water bubble column: effect of luo coalescence parameter and breakup kernels
publisher Frontiers Media S.A.
series Frontiers in Chemistry
issn 2296-2646
publishDate 2017-09-01
description In this work, CFD simulations of an air-water bubbling column were performed and validated with experimental data. The superficial gas velocities used for the experiments were 0.019 and 0.038 m/s and were considered as an homogeneous regime. The former involves simpler physics when compared to a heterogeneous regime where the superficial velocities are higher. In order to simulate the system, a population balance model (PBM) was solved numerically using a discrete method and a closure kernels involving the Luo coalescence model as well as two different breakup models: Luo's and Lehr's. For the multi-phase calculations, an eulerian framework was selected and the interphase momentum transfer included drag, lift, wall lubrication, and turbulent dispersion terms. A sensitivity analysis was performed on a Luo coalescence kernel by changing the coalescence parameter (c0) from 1.1 to 0.1 and results showed that the radial profiles of gas holdup and axial liquid velocity were significantly affected by such parameter. From the simulation results, the main conclusions were: (a) A combination of the Luo coalescence and Luo breakup kernels (Luo-Luo) combined with a decreasing value of c0 improves the gas holdup profiles as compared to empirical values. However, at the lowest value of c0 investigated in this work, the axial liquid velocity deteriorates with regards to experimental data when using a superficial gas velocity of 0.019 m/s. (b) A combination of the Luo coalescence and Lehr breakup models (Luo-Lehr) was shown to improve the gas holdup values with experimental data when compared to the Luo-Luo kernels. However, as c0 decreases, the Luo-Lehr models underestimate the axial liquid velocity profiles with regards to empirical values. (c) A first and second order numerical schemes allowed predicting similar radial profiles of gas holdup and axial liquid velocity. (d) The mesh sensitivity results show that a 3 mm mesh size can be considered as reasonable for simulating experimental data. (e) The inclusion of wall lubrication parameter was found to be significant, although only when using finer meshing. In addition, it allows an improvement of the axial liquid velocity at the core of the bubble column.
topic population balance model (PBM)
bubble size distribution
time-average radial profiles of holdup and axial liquid velocity
bubble column
url http://journal.frontiersin.org/article/10.3389/fchem.2017.00068/full
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AT tommasomelchiori cfdsimulationsofanairwaterbubblecolumneffectofluocoalescenceparameterandbreakupkernels
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