Dissecting spacer induced membrane deformation and fluid hydraulic behavior in reverse osmosis

IF 8.3 1区 工程技术 Q1 ENGINEERING, CHEMICAL Desalination Pub Date : 2024-11-14 DOI:10.1016/j.desal.2024.118315
Rihong Deng , Jiahao Mo , Yang Yang , Zhiqiang Pei , Xianhui Li
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Abstract

Feed spacer is a key component of the spiral wound membrane module. However, the membrane deformation induced by the feed spacer under high pressure presents a significant challenge to long-term operation of reverse osmosis (RO) membrane. This deformation alters the fluid hydraulic behavior within the feed channel and its underlying mechanism remains elusive. In this study, the computational fluid dynamics (CFD) simulation was conducted to illustrate the impact of the feed spacer geometry on membrane deformation under high pressure and the resultant changes in hydraulic performances. The simulated results revealed that an increase in the mesh angle and a reduction in the filament diameter and length, led to a higher degree of membrane deformation. In addition, larger mesh angles and filament diameters, and shorter the filament lengths could significantly enhance the performance of the spiral wound membrane (SWM) module. This study provides an insight for the design of feed spacer to optimize the performance of reverse osmosis membrane module.

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反渗透中解剖间隔剂诱导的膜变形和流体水力行为
进料垫片是螺旋缠绕膜组件的关键部件。然而,高压下进料间隔器引起的膜变形对反渗透(RO)膜的长期运行提出了重大挑战。这种变形改变了进料通道内流体的水力行为,其潜在机制尚不清楚。本研究通过计算流体动力学(CFD)模拟来说明进料间隔器几何形状对高压下膜变形的影响以及由此导致的水力性能变化。模拟结果表明,网状角的增大和纤维直径和长度的减小导致膜的变形程度增大。此外,较大的网孔角度和丝径以及较短的丝长可以显著提高螺旋缠绕膜(SWM)模块的性能。该研究为优化反渗透膜组件的进料间隔设计提供了参考。
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来源期刊
Desalination
Desalination 工程技术-工程:化工
CiteScore
14.60
自引率
20.20%
发文量
619
审稿时长
41 days
期刊介绍: Desalination is a scholarly journal that focuses on the field of desalination materials, processes, and associated technologies. It encompasses a wide range of disciplines and aims to publish exceptional papers in this area. The journal invites submissions that explicitly revolve around water desalting and its applications to various sources such as seawater, groundwater, and wastewater. It particularly encourages research on diverse desalination methods including thermal, membrane, sorption, and hybrid processes. By providing a platform for innovative studies, Desalination aims to advance the understanding and development of desalination technologies, promoting sustainable solutions for water scarcity challenges.
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