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Efficient Phosphorus Recovery from Municipal Wastewater Using Enhanced Biological Phosphorus Removal in an Anaerobic/Anoxic/Aerobic Membrane Bioreactor and Magnesium-Based Pellets

Municipal wastewater has been identified as a potential source of natural phosphorus (P) that is projected to become depleted in a few decades based on current exploitation rates. This paper focuses on combining a bench-scale anaerobic/anoxic/aerobic membrane bioreactor (MBR) and magnesium carbonate...

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Autores principales: Eghombi, Elvis, Kim, Hyunsik, Choi, Yang-Hun, Baek, Mi-Hwa, Nadagouda, Mallikarjuna N., Park, Pyung-Kyu, Chae, Soryong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8879317/
https://www.ncbi.nlm.nih.gov/pubmed/35207131
http://dx.doi.org/10.3390/membranes12020210
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author Eghombi, Elvis
Kim, Hyunsik
Choi, Yang-Hun
Baek, Mi-Hwa
Nadagouda, Mallikarjuna N.
Park, Pyung-Kyu
Chae, Soryong
author_facet Eghombi, Elvis
Kim, Hyunsik
Choi, Yang-Hun
Baek, Mi-Hwa
Nadagouda, Mallikarjuna N.
Park, Pyung-Kyu
Chae, Soryong
author_sort Eghombi, Elvis
collection PubMed
description Municipal wastewater has been identified as a potential source of natural phosphorus (P) that is projected to become depleted in a few decades based on current exploitation rates. This paper focuses on combining a bench-scale anaerobic/anoxic/aerobic membrane bioreactor (MBR) and magnesium carbonate (MgCO(3))-based pellets to effectively recover P from municipal wastewater. Ethanol was introduced into the anoxic zone of the MBR system as an external carbon source to improve P release via the enhanced biological phosphorus removal (EBPR) mechanism, making it available for adsorption by the continuous-flow MgCO(3) pellet column. An increase in the concentration of P in the MBR effluent led to an increase in the P adsorption capacity of the MgCO(3) pellets. As a result, the anaerobic/anoxic/aerobic MBR system, combined with a MgCO(3) pellet column and ethanol, achieved 91.6% P recovery from municipal wastewater, resulting in a maximum P adsorption capacity of 12.8 mg P/g MgCO(3) through the continuous-flow MgCO(3) pellet column. Although the introduction of ethanol into the anoxic zone was instrumental in releasing P through the EBPR, it could potentially increase membrane fouling by increasing the concentration of extracellular polymeric substances (EPSs) in the anoxic zone.
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spelling pubmed-88793172022-02-26 Efficient Phosphorus Recovery from Municipal Wastewater Using Enhanced Biological Phosphorus Removal in an Anaerobic/Anoxic/Aerobic Membrane Bioreactor and Magnesium-Based Pellets Eghombi, Elvis Kim, Hyunsik Choi, Yang-Hun Baek, Mi-Hwa Nadagouda, Mallikarjuna N. Park, Pyung-Kyu Chae, Soryong Membranes (Basel) Article Municipal wastewater has been identified as a potential source of natural phosphorus (P) that is projected to become depleted in a few decades based on current exploitation rates. This paper focuses on combining a bench-scale anaerobic/anoxic/aerobic membrane bioreactor (MBR) and magnesium carbonate (MgCO(3))-based pellets to effectively recover P from municipal wastewater. Ethanol was introduced into the anoxic zone of the MBR system as an external carbon source to improve P release via the enhanced biological phosphorus removal (EBPR) mechanism, making it available for adsorption by the continuous-flow MgCO(3) pellet column. An increase in the concentration of P in the MBR effluent led to an increase in the P adsorption capacity of the MgCO(3) pellets. As a result, the anaerobic/anoxic/aerobic MBR system, combined with a MgCO(3) pellet column and ethanol, achieved 91.6% P recovery from municipal wastewater, resulting in a maximum P adsorption capacity of 12.8 mg P/g MgCO(3) through the continuous-flow MgCO(3) pellet column. Although the introduction of ethanol into the anoxic zone was instrumental in releasing P through the EBPR, it could potentially increase membrane fouling by increasing the concentration of extracellular polymeric substances (EPSs) in the anoxic zone. MDPI 2022-02-10 /pmc/articles/PMC8879317/ /pubmed/35207131 http://dx.doi.org/10.3390/membranes12020210 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Eghombi, Elvis
Kim, Hyunsik
Choi, Yang-Hun
Baek, Mi-Hwa
Nadagouda, Mallikarjuna N.
Park, Pyung-Kyu
Chae, Soryong
Efficient Phosphorus Recovery from Municipal Wastewater Using Enhanced Biological Phosphorus Removal in an Anaerobic/Anoxic/Aerobic Membrane Bioreactor and Magnesium-Based Pellets
title Efficient Phosphorus Recovery from Municipal Wastewater Using Enhanced Biological Phosphorus Removal in an Anaerobic/Anoxic/Aerobic Membrane Bioreactor and Magnesium-Based Pellets
title_full Efficient Phosphorus Recovery from Municipal Wastewater Using Enhanced Biological Phosphorus Removal in an Anaerobic/Anoxic/Aerobic Membrane Bioreactor and Magnesium-Based Pellets
title_fullStr Efficient Phosphorus Recovery from Municipal Wastewater Using Enhanced Biological Phosphorus Removal in an Anaerobic/Anoxic/Aerobic Membrane Bioreactor and Magnesium-Based Pellets
title_full_unstemmed Efficient Phosphorus Recovery from Municipal Wastewater Using Enhanced Biological Phosphorus Removal in an Anaerobic/Anoxic/Aerobic Membrane Bioreactor and Magnesium-Based Pellets
title_short Efficient Phosphorus Recovery from Municipal Wastewater Using Enhanced Biological Phosphorus Removal in an Anaerobic/Anoxic/Aerobic Membrane Bioreactor and Magnesium-Based Pellets
title_sort efficient phosphorus recovery from municipal wastewater using enhanced biological phosphorus removal in an anaerobic/anoxic/aerobic membrane bioreactor and magnesium-based pellets
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8879317/
https://www.ncbi.nlm.nih.gov/pubmed/35207131
http://dx.doi.org/10.3390/membranes12020210
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