Study on the Biofilm Kinetics in Micro-Electrolysis Biological Reactors
Abstract
:1. Introduction
2. Hypothesis of Biofilm Formation
- (1)
- The flow rate of the subject solution along the biofilm surface is high, and the liquid-film diffusion resistance is negligible.
- (2)
- The biofilm is a homogeneous membrane, and the membrane density remains constant.
- (3)
- The pollutants in the effluent are homogeneous, i.e., the ions have a uniform radius.
- (4)
- In the biofilm, the viscosity coefficient of the gelatinous viscous material produced by the microorganisms is a constant value.
- (5)
- The applied electric field is uniform.
- (6)
- The electrostatic force between ions is neglected.
- (7)
- The amount of electricity charged by the pollutants is the same.
3. Biofilm Kinetics Under the Action of an Electric Field
3.1. Determination of the Diffusion Coefficient D Under the Influence of an Electric Field
3.2. Dynamics Models
4. Discussion
4.1. Relationship Between Electric Field Strength and Reaction Rate
4.2. Relationship Between Electric Field Strength and Effluent Concentration
4.3. Relationship Between Electric Field Strength and Biofilm Thickness
5. Conclusions
- (1)
- Under the goal of realizing the efficient removal of pollutants, the relationship between the electric field strength and the pollutant reaction rate can be simplified as a linear equation in the appropriate voltage range.
- (2)
- In the case of a high concentration, the electric field strength is quadratic with the ratio of the difference between the concentrations of pollutants in and out of the water and the reaction time; in the case of a low concentration, the electric field strength is power-functional with the ratio of the difference between the concentrations of pollutants in and out of the water and the concentration of the water inlet and outlet.
- (3)
- There is a fold increase in microbial film thickness in a micro-electrolysis bioreactor compared to the thickness of a microbial film formed in the absence of an electric field, and it becomes thicker with increases in electric field strength.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Zhang, X.; Zhang, Z.; Xu, J.; Pei, L.; Han, T.; Zhao, J. Study on the Biofilm Kinetics in Micro-Electrolysis Biological Reactors. Sustainability 2025, 17, 1105. https://doi.org/10.3390/su17031105
Zhang X, Zhang Z, Xu J, Pei L, Han T, Zhao J. Study on the Biofilm Kinetics in Micro-Electrolysis Biological Reactors. Sustainability. 2025; 17(3):1105. https://doi.org/10.3390/su17031105
Chicago/Turabian StyleZhang, Xiaohui, Zeya Zhang, Jingyi Xu, Liang Pei, Tongshun Han, and Jianguo Zhao. 2025. "Study on the Biofilm Kinetics in Micro-Electrolysis Biological Reactors" Sustainability 17, no. 3: 1105. https://doi.org/10.3390/su17031105
APA StyleZhang, X., Zhang, Z., Xu, J., Pei, L., Han, T., & Zhao, J. (2025). Study on the Biofilm Kinetics in Micro-Electrolysis Biological Reactors. Sustainability, 17(3), 1105. https://doi.org/10.3390/su17031105