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首页> 外文期刊>Desalination: The International Journal on the Science and Technology of Desalting and Water Purification >Improved performances of vacuum membrane distillation for desalination applications: Materials vs process engineering potentialities
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Improved performances of vacuum membrane distillation for desalination applications: Materials vs process engineering potentialities

机译:改进脱盐应用的真空膜蒸馏性能:材料与过程工程潜力

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摘要

Membrane distillation (MD) is considered an attractive technology for water desalination processes, but the low transmembrane water fluxes, compared to other desalination processes, is however often pointed out as an important disadvantage. This limitation can be tackled through an effective process engineering analysis. Membrane materials performances and process design (including operating conditions) can both generate creased water flux. These two possibilities are explored in this study, in order to better evaluate the interplay between materials and process role. In a first step, the impact of highly permeable and thin dense selfstanding membranes as an alternative to avoid pore wetting is studied. The use of passive process engineering strateg such as Dean vortices to enhance mass and heat transfer is further analyzed. It is shown that a highly permeability dense membrane material offers a potential twofold increase in water flux, when a permeability 10(-5) kg.m(-2) s(-1).Pa-1 is achieved. Alternatively, Dean vortices (helical hollow fibers) are of interest only when this level of permeance is obtained; a 20% increase in water flux could be achieved, thanks to a decrease of t temperature polarization effect.
机译:然而,膜蒸馏(MD)被认为是用于水脱盐过程的有吸引力的技术,但与其他脱盐过程相比,低跨膜水通量通常指出作为重要缺点。可以通过有效的过程工程分析来解决这种限制。膜材料性能和工艺设计(包括操作条件)都可以产生皱皱水通量。本研究探讨了这两种可能性,以便更好地评估材料与过程角色之间的相互作用。在第一步中,研究了高渗透性和薄致密的不良膜的影响作为避免孔隙润湿的替代方案。进一步分析了使用被动过程工程战略,例如DEAN涡流以提高质量和传热。结果表明,当实现渗透率10(-5)kg.m(-2)S(-1)时,高渗透性致密膜材料具有水助熔剂的潜在两倍。或者,Dean Vortices(螺旋中空纤维)仅在获得这种渗透水平时感兴趣;由于T温度偏振效应的降低,可以实现水通量增加20%。

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