Porous substrate affects fouling propensity of thin-film composite nanofiltration membranes

IF 4.9 Q1 ENGINEERING, CHEMICAL
Chenyue Wu, Li Long, Zhe Yang, Chuyang Y. Tang
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引用次数: 7

Abstract

Fouling is a critical consideration for the design of thin-film composite (TFC) nanofiltration membranes. Traditional wisdom believes that fouling propensity is primarily dictated by membrane surface properties while porous substrates play little role (on the basis on the latter have no effect on the foulant-membrane interaction). Nevertheless, porous substrates can regulate the water transport pathways, resulting in uneven water flux distribution over the membrane surface. For the first time, we experimentally investigated the micro-scale water flux distribution for nanofiltration membranes with different substrate porosities and the impact of such flux distribution pattern on fouling. With gold nanoparticles as tracers, we demonstrated more evenly distributed water flux at increasing substrate porosity. This was found to effectively alleviate membrane fouling by eliminating localized hot spots of high flux. Furthermore, higher substrate porosity also effectively enhanced the membrane water permeance due to the optimized water transport pathways. Our study reveals the fundamental relationship between the micro-scale transport behavior and the membrane fouling propensity, which provides a firm basis for the rational design of TFC membranes toward better separation performance.

Abstract Image

多孔基板影响薄膜复合纳滤膜的污染倾向
污染是薄膜复合(TFC)纳滤膜设计的关键问题。传统观点认为,污染倾向主要由膜表面性质决定,而多孔基质的作用很小(基于后者对污膜相互作用没有影响)。然而,多孔基质可以调节水的输送途径,导致膜表面的水通量分布不均匀。本文首次通过实验研究了不同基质孔隙率的纳滤膜的微尺度水通量分布及其对污染的影响。用金纳米颗粒作为示踪剂,我们发现随着基质孔隙率的增加,水通量分布更加均匀。通过消除局部高通量热点,可以有效地缓解膜污染。此外,由于优化的输水途径,更高的基质孔隙率也有效地增强了膜的透水性。本研究揭示了膜污染倾向与微尺度迁移行为之间的基本关系,为合理设计TFC膜以获得更好的分离性能提供了坚实的依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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