Fluidized-Bed Bioreactor Applications for Biological Wastewater Treatment: A Review of Research and Developments

Wastewater treatment is a process that is vital to protecting both the environment and human health. At present, the most cost-effective way of treating wastewater is with biological treatment processes such as the activated sludge process, despite their long operating times. However, population inc...

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Main Authors: Michael J. Nelson, George Nakhla, Jesse Zhu
Format: Article
Language:English
Published: Elsevier 2017-06-01
Series:Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2095809917304253
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spelling doaj-792e484671da45f5812ef1c8caac3ec72020-11-25T00:59:21ZengElsevierEngineering2095-80992017-06-013333034210.1016/J.ENG.2017.03.021Fluidized-Bed Bioreactor Applications for Biological Wastewater Treatment: A Review of Research and DevelopmentsMichael J. NelsonGeorge NakhlaJesse ZhuWastewater treatment is a process that is vital to protecting both the environment and human health. At present, the most cost-effective way of treating wastewater is with biological treatment processes such as the activated sludge process, despite their long operating times. However, population increases have created a demand for more efficient means of wastewater treatment. Fluidization has been demonstrated to increase the efficiency of many processes in chemical and biochemical engineering, but it has not been widely used in large-scale wastewater treatment. At the University of Western Ontario, the circulating fluidized-bed bioreactor (CFBBR) was developed for treating wastewater. In this process, carrier particles develop a biofilm composed of bacteria and other microbes. The excellent mixing and mass transfer characteristics inherent to fluidization make this process very effective at treating both municipal and industrial wastewater. Studies of lab- and pilot-scale systems showed that the CFBBR can remove over 90% of the influent organic matter and 80% of the nitrogen, and produces less than one-third as much biological sludge as the activated sludge process. Due to its high efficiency, the CFBBR can also be used to treat wastewaters with high organic solid concentrations, which are more difficult to treat with conventional methods because they require longer residence times; the CFBBR can also be used to reduce the system size and footprint. In addition, it is much better at handling and recovering from dynamic loadings (i.e., varying influent volume and concentrations) than current systems. Overall, the CFBBR has been shown to be a very effective means of treating wastewater, and to be capable of treating larger volumes of wastewater using a smaller reactor volume and a shorter residence time. In addition, its compact design holds potential for more geographically localized and isolated wastewater treatment systems.http://www.sciencedirect.com/science/article/pii/S2095809917304253WastewaterBiological wastewater treatmentFluidized-bed technologyFluidized-bed reactorBiological nutrient removalBio-particlesHigh-efficiency process
collection DOAJ
language English
format Article
sources DOAJ
author Michael J. Nelson
George Nakhla
Jesse Zhu
spellingShingle Michael J. Nelson
George Nakhla
Jesse Zhu
Fluidized-Bed Bioreactor Applications for Biological Wastewater Treatment: A Review of Research and Developments
Engineering
Wastewater
Biological wastewater treatment
Fluidized-bed technology
Fluidized-bed reactor
Biological nutrient removal
Bio-particles
High-efficiency process
author_facet Michael J. Nelson
George Nakhla
Jesse Zhu
author_sort Michael J. Nelson
title Fluidized-Bed Bioreactor Applications for Biological Wastewater Treatment: A Review of Research and Developments
title_short Fluidized-Bed Bioreactor Applications for Biological Wastewater Treatment: A Review of Research and Developments
title_full Fluidized-Bed Bioreactor Applications for Biological Wastewater Treatment: A Review of Research and Developments
title_fullStr Fluidized-Bed Bioreactor Applications for Biological Wastewater Treatment: A Review of Research and Developments
title_full_unstemmed Fluidized-Bed Bioreactor Applications for Biological Wastewater Treatment: A Review of Research and Developments
title_sort fluidized-bed bioreactor applications for biological wastewater treatment: a review of research and developments
publisher Elsevier
series Engineering
issn 2095-8099
publishDate 2017-06-01
description Wastewater treatment is a process that is vital to protecting both the environment and human health. At present, the most cost-effective way of treating wastewater is with biological treatment processes such as the activated sludge process, despite their long operating times. However, population increases have created a demand for more efficient means of wastewater treatment. Fluidization has been demonstrated to increase the efficiency of many processes in chemical and biochemical engineering, but it has not been widely used in large-scale wastewater treatment. At the University of Western Ontario, the circulating fluidized-bed bioreactor (CFBBR) was developed for treating wastewater. In this process, carrier particles develop a biofilm composed of bacteria and other microbes. The excellent mixing and mass transfer characteristics inherent to fluidization make this process very effective at treating both municipal and industrial wastewater. Studies of lab- and pilot-scale systems showed that the CFBBR can remove over 90% of the influent organic matter and 80% of the nitrogen, and produces less than one-third as much biological sludge as the activated sludge process. Due to its high efficiency, the CFBBR can also be used to treat wastewaters with high organic solid concentrations, which are more difficult to treat with conventional methods because they require longer residence times; the CFBBR can also be used to reduce the system size and footprint. In addition, it is much better at handling and recovering from dynamic loadings (i.e., varying influent volume and concentrations) than current systems. Overall, the CFBBR has been shown to be a very effective means of treating wastewater, and to be capable of treating larger volumes of wastewater using a smaller reactor volume and a shorter residence time. In addition, its compact design holds potential for more geographically localized and isolated wastewater treatment systems.
topic Wastewater
Biological wastewater treatment
Fluidized-bed technology
Fluidized-bed reactor
Biological nutrient removal
Bio-particles
High-efficiency process
url http://www.sciencedirect.com/science/article/pii/S2095809917304253
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