Development of a dynamic mathematical model for membrane bioelectrochemical reactors with different configurations

  • Jian Li
  • , Zhen He

Research output: Contribution to journalArticlepeer-review

16 Scopus citations

Abstract

Membrane bioelectrochemical reactors (MBERs) integrate membrane filtration into bioelectrochemical systems for sustainable wastewater treatment and recovery of bioenergy and other resource. Mathematical models for MBERs will advance the understanding of this technology towards further development. In the present study, a mathematical model was implemented for predicting current generation, membrane fouling, and organic removal within MBERs. The relative root-mean-square error was used to examine the model fit to the experimental data. It was found that a constant to determine how fast the internal resistance responds to the change of the anodophillic microorganism concentration could have a dominant impact on current generation. Hydraulic cross-flow exhibited a minor effect on membrane fouling unless it was reduced below 0.5 m s−1. This MBER model encourages further optimization and eventually can be used to guide MBER development.

Original languageEnglish
Pages (from-to)3897-3906
Number of pages10
JournalEnvironmental Science and Pollution Research
Volume23
Issue number4
DOIs
StatePublished - Feb 1 2016

Keywords

  • Bioelectrochemical system
  • Mathematical modeling
  • Membrane separation
  • Microbial fuel cell
  • Wastewater treatment

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