Journal Article10.3390/separations10090485
Optimizing Membrane Distillation Performance through Flow Channel Modification with Baffles: Experimental and Computational Study
Yaoling Zhang,Xingsen Mu,Jiaqi Sun,Fei Guo +3 more
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TL;DR: Flow channel modification with baffles can effectively reduce polarization effects and increase the transmembrane flux in membrane distillation.
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Abstract: It has been identified that temperature polarization and concentration polarization are typical near-surface phenomena limiting the performance of membrane distillation. The module design should allow for effective flow, reducing the polarization effects near the membrane surfaces and avoiding high hydrostatic pressure drops across and along the membrane surfaces. A potential route to enhancing the membrane distillation performance is geometry modification on the flow channel by employing baffles as vortex generators, reducing the polarization effects. In this work, various baffles with different structures were fabricated by 3D printing and attached to the feed flow channel shell in an air gap membrane distillation module. The hydrodynamic characteristics of the modified flow channels were systematically investigated via computational fluid dynamics simulations with various conditions. The membrane distillation tests show that adding the baffles to the feed channel can effectively increase the transmembrane flux. The transmembrane flux with rectangular baffles and shield-shaped baffles increases by 21.8% and 28.1% at the feed temperature of 70 °C. Moreover, the shield-shaped baffles in the flow channel not only enhance the transmembrane flux but also maintain a low-pressure drop, making it even more significant.
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Citations
Rare earth metal oxides smart modifiers in 3D re-entrant surface architecture for efficient membrane separation
Joanna Kujawa,Katarzyna Pianka,Samer Al‐Gharabli,Waldemar Jankowski,Zuzanna Flanc,Wojciech Kujawski +5 more
References
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Lucy Mar Camacho,Ludovic F. Dumée,Jianhua Zhang,Jun-de Li,Mikel Duke,Juan Gomez,Stephen Gray +6 more
TL;DR: In this paper, a review of the fundamental heat and mass transfer processes in membrane distillation, recent advances in membrane technology, module configurations, and applications and economics of membrane distilled water is presented.
Superhydrophobic modification of TiO2 nanocomposite PVDF membranes for applications in membrane distillation
TL;DR: In this paper, the anti-fouling performance of virgin and modified membranes were examined in a direct contact membrane distillation (DCMD) process using sodium chloride and humic acid solution as a model feed.
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Heat and mass transfer analysis in direct contact membrane distillation
TL;DR: In this article, a mathematical model was proposed to evaluate the experimental values of the thermal boundary layers' heat transfer coefficients, the membrane/liquid interface temperatures, the temperature polarization coefficient, membrane mass transfer coefficient and the evaporation efficiency.
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Mass transfer mechanisms and transport resistances in direct contact membrane distillation process
TL;DR: In this paper, the authors investigated the mass transport and fouling mechanism of direct contact membrane distillation (DCMD) process and found that molecular diffusion was the most suitable model for predicting fluxes of both laminar and turbulent flow.
476
Temperature and concentration polarization in membrane distillation of aqueous salt solutions
TL;DR: In this paper, the effects of temperature and concentration polarization on the reduction of vapour pressure differences across the membrane with regard to the bulk phases corresponding to the separated by the membrane, are evaluated.
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