Computational fluid dynamics modeling of floating treatment wetland retrofitted stormwater pond: Investigation on design configurations

Floating Treatment Wetland (FTW) is a cost-effective and easy-to-retrofit device for stormwater treatment. Its treatment efficiency largely depends on the fraction of inflow entering FTW and the residence time within it. Thus hydrodynamics play a crucial role, which is affected by the design configu...

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Published in:Journal of Environmental Management
Main Authors: Nuruzzaman, Md, Anwar, Faisal, Sarukkalige, Pryantha Ranjan
Other Authors: Dewil, Raf, Evans, Jason, Zhang, Lixiao
Format: Article in Journal/Newspaper
Language:unknown
Published: Elsevier 2023
Subjects:
Online Access:https://hdl.handle.net/20.500.11937/91317
https://doi.org/10.1016/j.jenvman.2023.117746
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spelling ftcurtin:oai:espace.curtin.edu.au:20.500.11937/91317 2023-06-11T04:16:12+02:00 Computational fluid dynamics modeling of floating treatment wetland retrofitted stormwater pond: Investigation on design configurations Nuruzzaman, Md Anwar, Faisal Sarukkalige, Pryantha Ranjan Dewil, Raf Evans, Jason Zhang, Lixiao 2023 fulltext https://hdl.handle.net/20.500.11937/91317 https://doi.org/10.1016/j.jenvman.2023.117746 unknown Elsevier http://hdl.handle.net/20.500.11937/91317 doi:10.1016/j.jenvman.2023.117746 http://creativecommons.org/licenses/by/4.0/ Journal Article 2023 ftcurtin https://doi.org/20.500.11937/9131710.1016/j.jenvman.2023.117746 2023-05-30T20:00:50Z Floating Treatment Wetland (FTW) is a cost-effective and easy-to-retrofit device for stormwater treatment. Its treatment efficiency largely depends on the fraction of inflow entering FTW and the residence time within it. Thus hydrodynamics play a crucial role, which is affected by the design configurations of FTW and stormwater pond. Despite a spike in research on FTWs, very little is known about how various design configurations affect treatment efficiency by an FTW. Our study hypothesizes that relative positions of FTW geometry, FTW position and pond inlet–outlet have impact on the hydrodynamics and as a consequence, treatment efficiency. To explore these design features, we employed computational fluid dynamics (CFD) modeling conducted in ANSYS Fluent, validated by experimental data to examine the impact of the aforementioned design features. The results revealed that circular FTW geometry positioned near inlet coupled with center inlet–side outlet configuration achieved the highest removal (94.8%) for a non-dimensional removal rate of krtHRT = 20 (kr is the first order removal rate in per day, tHRT is the nominal hydraulic residence time of the pond in days). Far side inlet–side outlet configuration performed the worst due to profound promotion of short-circuiting. FTW positioned near inlet performed better (61.8% mass removal on an average) than center (42.7%) and near outlet positions (54.1%) for krtHRT = 20. Sensitivity analysis revealed that the treatment efficiency is most sensitive to inlet–outlet configurations. The design implications of this study will help practitioners achieving better water quality and ecological improvement goals. Article in Journal/Newspaper Pond Inlet Curtin University: espace Pond Inlet ENVELOPE(-77.960,-77.960,72.699,72.699) Journal of Environmental Management 337 117746
institution Open Polar
collection Curtin University: espace
op_collection_id ftcurtin
language unknown
description Floating Treatment Wetland (FTW) is a cost-effective and easy-to-retrofit device for stormwater treatment. Its treatment efficiency largely depends on the fraction of inflow entering FTW and the residence time within it. Thus hydrodynamics play a crucial role, which is affected by the design configurations of FTW and stormwater pond. Despite a spike in research on FTWs, very little is known about how various design configurations affect treatment efficiency by an FTW. Our study hypothesizes that relative positions of FTW geometry, FTW position and pond inlet–outlet have impact on the hydrodynamics and as a consequence, treatment efficiency. To explore these design features, we employed computational fluid dynamics (CFD) modeling conducted in ANSYS Fluent, validated by experimental data to examine the impact of the aforementioned design features. The results revealed that circular FTW geometry positioned near inlet coupled with center inlet–side outlet configuration achieved the highest removal (94.8%) for a non-dimensional removal rate of krtHRT = 20 (kr is the first order removal rate in per day, tHRT is the nominal hydraulic residence time of the pond in days). Far side inlet–side outlet configuration performed the worst due to profound promotion of short-circuiting. FTW positioned near inlet performed better (61.8% mass removal on an average) than center (42.7%) and near outlet positions (54.1%) for krtHRT = 20. Sensitivity analysis revealed that the treatment efficiency is most sensitive to inlet–outlet configurations. The design implications of this study will help practitioners achieving better water quality and ecological improvement goals.
author2 Dewil, Raf
Evans, Jason
Zhang, Lixiao
format Article in Journal/Newspaper
author Nuruzzaman, Md
Anwar, Faisal
Sarukkalige, Pryantha Ranjan
spellingShingle Nuruzzaman, Md
Anwar, Faisal
Sarukkalige, Pryantha Ranjan
Computational fluid dynamics modeling of floating treatment wetland retrofitted stormwater pond: Investigation on design configurations
author_facet Nuruzzaman, Md
Anwar, Faisal
Sarukkalige, Pryantha Ranjan
author_sort Nuruzzaman, Md
title Computational fluid dynamics modeling of floating treatment wetland retrofitted stormwater pond: Investigation on design configurations
title_short Computational fluid dynamics modeling of floating treatment wetland retrofitted stormwater pond: Investigation on design configurations
title_full Computational fluid dynamics modeling of floating treatment wetland retrofitted stormwater pond: Investigation on design configurations
title_fullStr Computational fluid dynamics modeling of floating treatment wetland retrofitted stormwater pond: Investigation on design configurations
title_full_unstemmed Computational fluid dynamics modeling of floating treatment wetland retrofitted stormwater pond: Investigation on design configurations
title_sort computational fluid dynamics modeling of floating treatment wetland retrofitted stormwater pond: investigation on design configurations
publisher Elsevier
publishDate 2023
url https://hdl.handle.net/20.500.11937/91317
https://doi.org/10.1016/j.jenvman.2023.117746
long_lat ENVELOPE(-77.960,-77.960,72.699,72.699)
geographic Pond Inlet
geographic_facet Pond Inlet
genre Pond Inlet
genre_facet Pond Inlet
op_relation http://hdl.handle.net/20.500.11937/91317
doi:10.1016/j.jenvman.2023.117746
op_rights http://creativecommons.org/licenses/by/4.0/
op_doi https://doi.org/20.500.11937/9131710.1016/j.jenvman.2023.117746
container_title Journal of Environmental Management
container_volume 337
container_start_page 117746
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