Experimental and theoretical investigation of anaerobic fluidized bed biofilm reactors

This work presents an experimental and theoretical investigation of anaerobic fluidized bed reactors (AFBRs). The bioreactors are modeled as dynamic three-phase systems. Biochemical transformations are assumed to occur only in the fluidized bed zone. The biofilm process model is coupled to the syste...

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Main Authors: M. Fuentes, M. C. Mussati, P. A. Aguirre, N. J. Scenna
Format: Article
Language:English
Published: Brazilian Society of Chemical Engineering 2009-09-01
Series:Brazilian Journal of Chemical Engineering
Subjects:
Online Access:http://www.scielo.br/scielo.php?script=sci_arttext&pid=S0104-66322009000300002
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spelling doaj-bfa5fbc4e7f94126876881d29776329f2020-11-25T00:50:05ZengBrazilian Society of Chemical EngineeringBrazilian Journal of Chemical Engineering0104-66321678-43832009-09-0126345746810.1590/S0104-66322009000300002Experimental and theoretical investigation of anaerobic fluidized bed biofilm reactorsM. FuentesM. C. MussatiP. A. AguirreN. J. ScennaThis work presents an experimental and theoretical investigation of anaerobic fluidized bed reactors (AFBRs). The bioreactors are modeled as dynamic three-phase systems. Biochemical transformations are assumed to occur only in the fluidized bed zone. The biofilm process model is coupled to the system hydrodynamic model through the biofilm detachment rate; which is assumed to be a first-order function of the energy dissipation parameter and a second order function of biofilm thickness. Non-active biomass is considered to be particulate material subject to hydrolysis. The model includes the anaerobic conversion for complex substrate degradation and kinetic parameters selected from the literature. The experimental set-up consisted of two mesophilic (36±1ºC) lab-scale AFBRs (R1 and R2) loaded with sand as inert support for biofilm development. The reactor start-up policy was based on gradual increments in the organic loading rate (OLR), over a four month period. Step-type disturbances were applied on the inlet (glucose and acetic acid) substrate concentration (chemical oxygen demand (COD) from 0.85 to 2.66 g L-1) and on the feed flow rate (from 3.2 up to 6.0 L d-1) considering the maximum efficiency as the reactor loading rate switching. The predicted and measured responses of the total and soluble COD, volatile fatty acid (VFA) concentrations, biogas production rate and pH were investigated. Regarding hydrodynamic and fluidization aspects, variations of the bed expansion due to disturbances in the inlet flow rate and the biofilm growth were measured. As rate coefficients for the biofilm detachment model, empirical values of 3.73⋅10(4) and 0.75⋅10(4) s² kg-1 m-1 for R1 and R2, respectively, were estimated.http://www.scielo.br/scielo.php?script=sci_arttext&pid=S0104-66322009000300002Anaerobic ProcessesBiofilmsDynamic ModelingFluidized Bed BioreactorsWastewater Treatment
collection DOAJ
language English
format Article
sources DOAJ
author M. Fuentes
M. C. Mussati
P. A. Aguirre
N. J. Scenna
spellingShingle M. Fuentes
M. C. Mussati
P. A. Aguirre
N. J. Scenna
Experimental and theoretical investigation of anaerobic fluidized bed biofilm reactors
Brazilian Journal of Chemical Engineering
Anaerobic Processes
Biofilms
Dynamic Modeling
Fluidized Bed Bioreactors
Wastewater Treatment
author_facet M. Fuentes
M. C. Mussati
P. A. Aguirre
N. J. Scenna
author_sort M. Fuentes
title Experimental and theoretical investigation of anaerobic fluidized bed biofilm reactors
title_short Experimental and theoretical investigation of anaerobic fluidized bed biofilm reactors
title_full Experimental and theoretical investigation of anaerobic fluidized bed biofilm reactors
title_fullStr Experimental and theoretical investigation of anaerobic fluidized bed biofilm reactors
title_full_unstemmed Experimental and theoretical investigation of anaerobic fluidized bed biofilm reactors
title_sort experimental and theoretical investigation of anaerobic fluidized bed biofilm reactors
publisher Brazilian Society of Chemical Engineering
series Brazilian Journal of Chemical Engineering
issn 0104-6632
1678-4383
publishDate 2009-09-01
description This work presents an experimental and theoretical investigation of anaerobic fluidized bed reactors (AFBRs). The bioreactors are modeled as dynamic three-phase systems. Biochemical transformations are assumed to occur only in the fluidized bed zone. The biofilm process model is coupled to the system hydrodynamic model through the biofilm detachment rate; which is assumed to be a first-order function of the energy dissipation parameter and a second order function of biofilm thickness. Non-active biomass is considered to be particulate material subject to hydrolysis. The model includes the anaerobic conversion for complex substrate degradation and kinetic parameters selected from the literature. The experimental set-up consisted of two mesophilic (36±1ºC) lab-scale AFBRs (R1 and R2) loaded with sand as inert support for biofilm development. The reactor start-up policy was based on gradual increments in the organic loading rate (OLR), over a four month period. Step-type disturbances were applied on the inlet (glucose and acetic acid) substrate concentration (chemical oxygen demand (COD) from 0.85 to 2.66 g L-1) and on the feed flow rate (from 3.2 up to 6.0 L d-1) considering the maximum efficiency as the reactor loading rate switching. The predicted and measured responses of the total and soluble COD, volatile fatty acid (VFA) concentrations, biogas production rate and pH were investigated. Regarding hydrodynamic and fluidization aspects, variations of the bed expansion due to disturbances in the inlet flow rate and the biofilm growth were measured. As rate coefficients for the biofilm detachment model, empirical values of 3.73⋅10(4) and 0.75⋅10(4) s² kg-1 m-1 for R1 and R2, respectively, were estimated.
topic Anaerobic Processes
Biofilms
Dynamic Modeling
Fluidized Bed Bioreactors
Wastewater Treatment
url http://www.scielo.br/scielo.php?script=sci_arttext&pid=S0104-66322009000300002
work_keys_str_mv AT mfuentes experimentalandtheoreticalinvestigationofanaerobicfluidizedbedbiofilmreactors
AT mcmussati experimentalandtheoreticalinvestigationofanaerobicfluidizedbedbiofilmreactors
AT paaguirre experimentalandtheoreticalinvestigationofanaerobicfluidizedbedbiofilmreactors
AT njscenna experimentalandtheoreticalinvestigationofanaerobicfluidizedbedbiofilmreactors
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