Please use this identifier to cite or link to this item: http://hdl.handle.net/11189/10080
Title: Optimization and modeling of a dual-chamber microbial fuel cell (DCMFC) for industrial wastewater treatment: a box–behnken design approach
Authors: Shabangu, Khaya Pearlman 
Chetty, Manimagalay 
Bakare, Babatunde Femi 
Keywords: DCMFC;Optimization;Modeling;Industrial wastewater;Box–Behnken design
Issue Date: 2024
Publisher: MDPI
Source: Shabangu, K.P., Chetty, M. & Bakare, B.F. 2024. Optimization and modeling of a dual-chamber microbial fuel cell (DCMFC) for industrial wastewater treatment: a box–behnken design approach. Energies, 17(11): 1-44. [https://doi.org/10.3390/en17112740]
Journal: Energies 
Abstract: Microbial fuel cells (MFCs) have garnered significant attention due to their capacity to generate electricity using renewable and carbon-neutral energy sources such as wastewater. Extensive experimental work and modeling techniques have been employed to dissect these processes and understand their respective impacts on electricity generation. The driving force is to enhance MFC performance for practical applications commercially. Among the various statistical modeling approaches, one particularly robust tool is the Design of Experiments (DoE). It serves to establish the relationships between different variables that influence MFC performance and allows for the optimization of the MFC configuration and operation for scaled-up performances in terms of bioelectricity generation. This study focused on optimizing microbial fuel cells (MFCs) for bioelectricity production using industrial wastewater treatment, employing the Box–Behnken design (BBD) methodology. Through an analysis of response surface models and ANOVA tests, it was found that a combined approach of reduced quadratic, reduced two-factor interaction, and linear models yielded sound results, particularly in voltage yield, COD removal, and current density. Second-order regression models predicted optimal conditions for various parameters, with surface area, temperature, and catholyte dosage identified as critical input variables for optimization.
URI: http://hdl.handle.net/11189/10080
ISSN: 1996-1073 (Online)
DOI: https://doi.org/10.3390/en17112740
Appears in Collections:Eng - Journal articles (DHET subsidised)

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