CFD-PBM Coupled Simulation of an Airlift Reactor with Non-Newtonian Fluid

Hydrodynamics of an AirLift Reactor (ALR) with tap water and non-Newtonian fluid was studied experimentally and by numerical simulations. The Population Balance Model (PBM) with multiple breakup and coalescence mechanisms was used to describe bubble size characteristics in the ALR. The interphase fo...

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Main Authors: Han Mei, Sha Zuoliang, Laari Arto, Koiranen Tuomas
Format: Article
Language:English
Published: EDP Sciences 2017-09-01
Series:Oil & Gas Science and Technology
Online Access:https://doi.org/10.2516/ogst/2017017
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spelling doaj-67fc2bad9d324935afa38daf1378b79e2021-02-02T00:07:52ZengEDP SciencesOil & Gas Science and Technology1294-44751953-81892017-09-017252610.2516/ogst/2017017ogst160167CFD-PBM Coupled Simulation of an Airlift Reactor with Non-Newtonian FluidHan MeiSha ZuoliangLaari ArtoKoiranen TuomasHydrodynamics of an AirLift Reactor (ALR) with tap water and non-Newtonian fluid was studied experimentally and by numerical simulations. The Population Balance Model (PBM) with multiple breakup and coalescence mechanisms was used to describe bubble size characteristics in the ALR. The interphase forces for closing the two-fluid model were formulated by considering the effect of Bubble Size Distribution (BSD). The BSD in the ALR obtained from the coupled Computational Fluid Dynamics (CFD)-PBM model was validated against results from digital imaging measurements. The simulated velocity fields of both the gas and liquid phases were compared to measured fields obtained with Particle Image Velocimetry (PIV). The simulated results show different velocity field profile features at the top of the ALR between tap water and non-Newtonian fluid, which are in agreement with experiments. In addition, good agreement between simulations and experiments was obtained in terms of overall gas holdup and bubble Sauter mean diameter.https://doi.org/10.2516/ogst/2017017
collection DOAJ
language English
format Article
sources DOAJ
author Han Mei
Sha Zuoliang
Laari Arto
Koiranen Tuomas
spellingShingle Han Mei
Sha Zuoliang
Laari Arto
Koiranen Tuomas
CFD-PBM Coupled Simulation of an Airlift Reactor with Non-Newtonian Fluid
Oil & Gas Science and Technology
author_facet Han Mei
Sha Zuoliang
Laari Arto
Koiranen Tuomas
author_sort Han Mei
title CFD-PBM Coupled Simulation of an Airlift Reactor with Non-Newtonian Fluid
title_short CFD-PBM Coupled Simulation of an Airlift Reactor with Non-Newtonian Fluid
title_full CFD-PBM Coupled Simulation of an Airlift Reactor with Non-Newtonian Fluid
title_fullStr CFD-PBM Coupled Simulation of an Airlift Reactor with Non-Newtonian Fluid
title_full_unstemmed CFD-PBM Coupled Simulation of an Airlift Reactor with Non-Newtonian Fluid
title_sort cfd-pbm coupled simulation of an airlift reactor with non-newtonian fluid
publisher EDP Sciences
series Oil & Gas Science and Technology
issn 1294-4475
1953-8189
publishDate 2017-09-01
description Hydrodynamics of an AirLift Reactor (ALR) with tap water and non-Newtonian fluid was studied experimentally and by numerical simulations. The Population Balance Model (PBM) with multiple breakup and coalescence mechanisms was used to describe bubble size characteristics in the ALR. The interphase forces for closing the two-fluid model were formulated by considering the effect of Bubble Size Distribution (BSD). The BSD in the ALR obtained from the coupled Computational Fluid Dynamics (CFD)-PBM model was validated against results from digital imaging measurements. The simulated velocity fields of both the gas and liquid phases were compared to measured fields obtained with Particle Image Velocimetry (PIV). The simulated results show different velocity field profile features at the top of the ALR between tap water and non-Newtonian fluid, which are in agreement with experiments. In addition, good agreement between simulations and experiments was obtained in terms of overall gas holdup and bubble Sauter mean diameter.
url https://doi.org/10.2516/ogst/2017017
work_keys_str_mv AT hanmei cfdpbmcoupledsimulationofanairliftreactorwithnonnewtonianfluid
AT shazuoliang cfdpbmcoupledsimulationofanairliftreactorwithnonnewtonianfluid
AT laariarto cfdpbmcoupledsimulationofanairliftreactorwithnonnewtonianfluid
AT koiranentuomas cfdpbmcoupledsimulationofanairliftreactorwithnonnewtonianfluid
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