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A numerical simulation of a three-dimensional microbial fuel cell was conducted to study the effects of flow rates, turbulence, and bacterial action on MFC efficiency.

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What they did

System
MFC

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Abstract

Abstract Microbial Fuel Cell (MFC) has various application potential as in generation of bioelectricity, bio-hydrogen production, waste water treatment and it is also used as biosensors. It would not be possible to headway without mentioning that MFCs have quite a many similarities with Chemical Fuel Cells (CFC). It is seen that a lot of research is carried out for CFCs as compared to MFCs. Most of the research works on MFCs include experimental approach while very few computational studies have been carried out for MFCs. So an endeavour is made to create a model which mimics the working by simulating the key physical and biochemical processes occurring. Results imply that variation of current density occurs with change in Reynolds number (Re) and kinetic rate of reaction (k) which lead to the study of effects of variation of flow rates, turbulence and the action of different bacteria in the efficiency of MFCs. The current density achieved computationally is around 512 mA/m 2 for Re=5 and k=10 −3 which is in good agreement with the experimental data. Regions of higher current density are found which can be used to improvise the MFCs. Present mathematical model provides a new perspective in understanding the biomass concentration across the MFC and gives better knowledge of the mechanisms taking place. This simple computational framework provides insight into the fluid dynamics involved during continuous feeding, by overcoming the limitations and technical barriers in monitoring and examining through experiments. By implementing the findings from this model optimization of designs can be achieved leading to higher current generation, increase in efficacy and cost effective production techniques which paves the way for future work.

Key findings

  • Variation of current density occurs with change in Reynolds number (Re) and kinetic rate of reaction (k).
  • Current density achieved computationally is around 512 mA/m² for Re=5 and k=10⁻³.
  • Regions of higher current density are found, which can be used for MFC optimization.

Keywords

Microbial fuel cellBiochemical engineeringBiomass (ecology)Current (fluid)Process engineeringFuel cells

Identifiers

Journal
IOP Conference Series: Earth and Environmental Science
Year
2020