Multiscale modelling of transport in polymer-based reverse-osmosis/nanofiltration membranes: present and future.

0 MATERIALS SCIENCE, MULTIDISCIPLINARY
Haochen Zhu, Anthony Szymczyk, Aziz Ghoufi
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Abstract

Nanofiltration (NF) and reverse osmosis (RO) processes are physical separation technologies used to remove contaminants from liquid streams by employing dense polymer-based membranes with nanometric voids that confine fluids at the nanoscale. At this level, physical properties such as solvent and solute permeabilities are intricately linked to molecular interactions. Initially, numerous studies focused on developing macroscopic transport models to gain insights into separation properties at the nanometer scale. However, continuum-based models have limitations in nanoconfined situations that can be overcome by force field molecular simulations. Continuum-based models heavily rely on bulk properties, often neglecting critical factors like liquid structuring, pore geometry, and molecular/chemical specifics. Molecular/mesoscale simulations, while encompassing these details, often face limitations in time and spatial scales. Therefore, achieving a comprehensive understanding of transport requires a synergistic integration of both approaches through a multiscale approach that effectively combines and merges both scales. This review aims to provide a comprehensive overview of the state-of-the-art in multiscale modeling of transport through NF/RO membranes, spanning from the nanoscale to continuum media.

Abstract Image

基于聚合物的反渗透/纳滤膜的多尺度传输建模:现状与未来。
纳滤(NF)和反渗透(RO)工艺是一种物理分离技术,通过采用具有纳米级空隙的致密聚合物膜,在纳米尺度上限制流体,从而去除液流中的污染物。在这个层面上,溶剂和溶质渗透性等物理特性与分子相互作用有着错综复杂的联系。最初,许多研究都侧重于开发宏观传输模型,以深入了解纳米尺度的分离特性。然而,基于连续体的模型在纳米受限情况下存在局限性,而力场分子模拟可以克服这些局限性。基于连续介质的模型严重依赖于体积特性,往往忽略了液体结构、孔隙几何形状和分子/化学特性等关键因素。分子/中尺度模拟虽然包含这些细节,但往往面临时间和空间尺度的限制。因此,要全面了解传输问题,需要通过多尺度方法将两种方法协同整合,有效结合和融合两种尺度。本综述旨在全面概述通过 NF/RO 膜进行传输的多尺度建模的最新进展,范围从纳米尺度到连续介质。
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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CiteScore
0.70
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