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Published on: February 13, 2016
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Performance evaluation of membrane bioreactor coupled with self-forming dynamic membrane.
S Mariraj Mohan1, S Nagalakshmi2
1Assistant Professor in Civil Engineering, Alagaapa Chettiar Government College of Engineering and Technology, Karaikudi, 630003, Tamilnadu, India.
Journal of Environmental Management
|September 2, 2022
Summary
A modified membrane bioreactor (M-MBR) with a self-forming dynamic membrane significantly reduced fouling compared to a conventional system. This modification extended operational duration by minimizing cake layer and pore blocking resistance.
Area of Science:
- Environmental Engineering
- Water Treatment Technologies
- Membrane Science
Background:
- Membrane bioreactors (MBRs) are crucial for wastewater treatment but suffer from membrane fouling.
- Conventional MBRs (C-MBRs) experience significant fouling, primarily due to cake layer resistance, limiting operational efficiency.
- Effective fouling mitigation strategies are essential for sustainable and cost-effective MBR operation.
Purpose of the Study:
- To evaluate the fouling reduction efficacy of a modified membrane bioreactor (M-MBR) compared to a C-MBR.
- To investigate the impact of a self-forming dynamic membrane (SFDM) integrated into the M-MBR system.
- To quantify the reduction in cake layer and pore blocking resistance in the M-MBR.
Main Methods:
- A modified membrane bioreactor (M-MBR) was developed by incorporating a self-forming dynamic membrane (SFDM) on nylon cloth filters preceding a flat sheet membrane.
- Coarse (125 μm) and fine (37 μm) nylon cloth filters were used to form the SFDM.
- The fouling characteristics, including cake layer resistance (RC) and pore blocking resistance (RP), were compared between C-MBR and M-MBR.
Main Results:
- The C-MBR exhibited frequent fouling, with cake layer resistance (RC) accounting for 83.98% of total resistance (RT).
- In the M-MBR, RC was reduced to 67.86% of RT, and pore blocking resistance (RP) was significantly lowered to 1.31% of RT.
- The M-MBR demonstrated prolonged operational stability, reaching 8.6 KPa over 150 days (0.057 KPa/day), indicating substantial fouling reduction.
Conclusions:
- The integration of an SFDM in the M-MBR effectively mitigates membrane fouling.
- The modification significantly reduces both cake layer and pore blocking resistance, enhancing MBR performance.
- The M-MBR offers a promising approach for sustainable wastewater treatment with improved operational longevity.

