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A generalized model for complex wastewater treatment with simultaneous bioenergy production using the microbial electrochemical cell

Karimi Alavijeh, M ; Sharif University of Technology | 2015

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  1. Type of Document: Article
  2. DOI: 10.1016/j.electacta.2015.03.133
  3. Publisher: Elsevier Ltd , 2015
  4. Abstract:
  5. The objective of this study was to construct a novel model to be applied in a general manner to simulate microbial electrochemical cells (MXCs); for both microbial fuel cell (MFC) and microbial electrolysis cell (MEC). The liquid bulk was modeled based on the organic matters degradation to acetate via the anaerobic digestion process. Biofilm simulation was established based upon one-dimensional distribution and the dynamical electron transfer was completed by means of the conduction-based mechanism. We, for the first time, introduced biofilm local potential modeling for MEC simulation with general and simplified linear boundary conditions. The MFC-related part of the model was evaluated based on the experimental results from a gluconic acid-fed MFC with various simulated variables of liquid bulk and biofilm such as, bulk concentrations, distributions of microbial volume fractions and local potential in the biofilm, and biofilm thickness. The MEC-related part of the model with simplified linear boundary condition was assessed by the MEC experimental data fed with potato wastewater as the complex substrate. The MEC performance as an energy carrier generator was characterized based on the hydrogen production rate evolution, the variations of microbial distributions, and methane production at different applied potential differences. In addition, polarization characteristics were simulated and discussed based on the experimental results. These valuations showed that the presented model is successfully able to predict both MFC and MEC performance
  6. Keywords:
  7. Conduction-based mechanism ; Microbial electrolysis cell ; Microbial fuel cell ; Modeling ; Anaerobic digestion ; Biofilms ; Boundary conditions ; Electrochemical cells ; Electrolysis ; Electrolytic cells ; Fuel cells ; Hydrogen production ; Liquids ; Methane ; Models ; Regenerative fuel cells ; Wastewater treatment ; Anaerobic digestion process ; Applied potentials ; Bio-film thickness ; Bioenergy productions ; Hydrogen production rate ; Microbial distribution ; Microbial electrolysis cells ; Polarization characteristics ; Microbial fuel cells
  8. Source: Electrochimica Acta ; Volume 167 , 2015 , Pages 84-96 ; 00134686 (ISSN)
  9. URL: http://www.sciencedirect.com/science/article/pii/S0013468615007392