Computational Fluid Dynamics Analysis of a Venturi-Integrated Diffuser Design for Membrane Bioreactors
Veli Batmaz, Necati Kayaalp

TL;DR
This paper introduces a new diffuser design for membrane bioreactors that improves filtration efficiency by evenly distributing air flow.
Contribution
The novel Venturi-integrated diffuser design increases filtration efficiency through homogeneous shear stress distribution.
Findings
The V-MBR model produced about 50% higher average shear stress on the membrane surfaces.
The V-MBR model showed low variance and non-zero shear stress values compared to the conventional S-MBR.
Parameters like velocity and turbulent kinetic energy supported the superior performance of the V-MBR model.
Abstract
In a standard diffuser system in a membrane bioreactor (MBR), uneven air distribution scouring the membrane surface causes transmembrane pressure to reach its ultimate value earlier, which requires membrane cleaning more frequently. In this study, a Venturi-integrated innovative diffuser design is proposed to improve membrane bioreactor (MBR) technology. The proposed design aims to increase filtration efficiency by creating a homogeneous scouring effect on the membrane surface. To compare the performance of the proposed diffuser configuration (V-MBR) with that of a conventional diffuser (S-MBR), computational fluid dynamics models were established for each of the two configurations. The results showed that the V-MBR model produced about 50% higher average shear stress on the membrane surfaces. Statistical analysis also showed that the V-MBR model generally produced low variance and…
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Taxonomy
TopicsMembrane Separation Technologies · Mechanical Circulatory Support Devices · Electrospun Nanofibers in Biomedical Applications
