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Enhanced Biodesulfurization with a Microbubble Strategy in an Airlift Bioreactor with Haloalkaliphilic Bacterium Thioalkalivibrio versutus D306

[Image: see text] Biodesulfurization under haloalkaline conditions requires limiting oxygen and additional energy in the system to deliver high mixing quality control. This study considers biodesulfurization in an airlift bioreactor with uniform microbubbles generated by a fluidic oscillation aerati...

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Autores principales: Peh, Sumit, Mu, Tingzhen, Zhong, Wei, Yang, Maohua, Chen, Zheng, Yang, Gama, Zhao, Xuhao, Sharshar, Moustafa Mohamed, Samak, Nadia A., Xing, Jianmin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9096976/
https://www.ncbi.nlm.nih.gov/pubmed/35571827
http://dx.doi.org/10.1021/acsomega.2c00258
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author Peh, Sumit
Mu, Tingzhen
Zhong, Wei
Yang, Maohua
Chen, Zheng
Yang, Gama
Zhao, Xuhao
Sharshar, Moustafa Mohamed
Samak, Nadia A.
Xing, Jianmin
author_facet Peh, Sumit
Mu, Tingzhen
Zhong, Wei
Yang, Maohua
Chen, Zheng
Yang, Gama
Zhao, Xuhao
Sharshar, Moustafa Mohamed
Samak, Nadia A.
Xing, Jianmin
author_sort Peh, Sumit
collection PubMed
description [Image: see text] Biodesulfurization under haloalkaline conditions requires limiting oxygen and additional energy in the system to deliver high mixing quality control. This study considers biodesulfurization in an airlift bioreactor with uniform microbubbles generated by a fluidic oscillation aeration system to enhance the biological desulfurization process and its hydrodynamics. Fluidic oscillation aeration in an airlift bioreactor requires minimal energy input for microbubble generation. This aeration system produced 81.87% smaller average microbubble size than the direct aeration system in a bubble column bioreactor. The biodesulfurization phase achieved a yield of 94.94% biological sulfur, 84.91% biological sulfur selectivity, and 5.06% sulfur oxidation performance in the airlift bioreactor with the microbubble strategy. The biodesulfurization conditions of thiosulfate via Thioalkalivibrio versutus D306 are revealed in this study. The biodesulfurization conditions in the airlift bioreactor with the fluidic oscillation aeration system resulted in the complete conversion of thiosulfate with 27.64% less sulfate production and 10.34% more biological sulfur production than in the bubble column bioreactor. Therefore, pleasant hydrodynamics via an airlift bioreactor mechanism with microbubbles is favored for biodesulfurization under haloalkaline conditions.
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spelling pubmed-90969762022-05-13 Enhanced Biodesulfurization with a Microbubble Strategy in an Airlift Bioreactor with Haloalkaliphilic Bacterium Thioalkalivibrio versutus D306 Peh, Sumit Mu, Tingzhen Zhong, Wei Yang, Maohua Chen, Zheng Yang, Gama Zhao, Xuhao Sharshar, Moustafa Mohamed Samak, Nadia A. Xing, Jianmin ACS Omega [Image: see text] Biodesulfurization under haloalkaline conditions requires limiting oxygen and additional energy in the system to deliver high mixing quality control. This study considers biodesulfurization in an airlift bioreactor with uniform microbubbles generated by a fluidic oscillation aeration system to enhance the biological desulfurization process and its hydrodynamics. Fluidic oscillation aeration in an airlift bioreactor requires minimal energy input for microbubble generation. This aeration system produced 81.87% smaller average microbubble size than the direct aeration system in a bubble column bioreactor. The biodesulfurization phase achieved a yield of 94.94% biological sulfur, 84.91% biological sulfur selectivity, and 5.06% sulfur oxidation performance in the airlift bioreactor with the microbubble strategy. The biodesulfurization conditions of thiosulfate via Thioalkalivibrio versutus D306 are revealed in this study. The biodesulfurization conditions in the airlift bioreactor with the fluidic oscillation aeration system resulted in the complete conversion of thiosulfate with 27.64% less sulfate production and 10.34% more biological sulfur production than in the bubble column bioreactor. Therefore, pleasant hydrodynamics via an airlift bioreactor mechanism with microbubbles is favored for biodesulfurization under haloalkaline conditions. American Chemical Society 2022-04-29 /pmc/articles/PMC9096976/ /pubmed/35571827 http://dx.doi.org/10.1021/acsomega.2c00258 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Peh, Sumit
Mu, Tingzhen
Zhong, Wei
Yang, Maohua
Chen, Zheng
Yang, Gama
Zhao, Xuhao
Sharshar, Moustafa Mohamed
Samak, Nadia A.
Xing, Jianmin
Enhanced Biodesulfurization with a Microbubble Strategy in an Airlift Bioreactor with Haloalkaliphilic Bacterium Thioalkalivibrio versutus D306
title Enhanced Biodesulfurization with a Microbubble Strategy in an Airlift Bioreactor with Haloalkaliphilic Bacterium Thioalkalivibrio versutus D306
title_full Enhanced Biodesulfurization with a Microbubble Strategy in an Airlift Bioreactor with Haloalkaliphilic Bacterium Thioalkalivibrio versutus D306
title_fullStr Enhanced Biodesulfurization with a Microbubble Strategy in an Airlift Bioreactor with Haloalkaliphilic Bacterium Thioalkalivibrio versutus D306
title_full_unstemmed Enhanced Biodesulfurization with a Microbubble Strategy in an Airlift Bioreactor with Haloalkaliphilic Bacterium Thioalkalivibrio versutus D306
title_short Enhanced Biodesulfurization with a Microbubble Strategy in an Airlift Bioreactor with Haloalkaliphilic Bacterium Thioalkalivibrio versutus D306
title_sort enhanced biodesulfurization with a microbubble strategy in an airlift bioreactor with haloalkaliphilic bacterium thioalkalivibrio versutus d306
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9096976/
https://www.ncbi.nlm.nih.gov/pubmed/35571827
http://dx.doi.org/10.1021/acsomega.2c00258
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