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新型孔柱间隔物设计,改善膜过滤中的水动力和生物污染缓解。

Novel hole-pillar spacer design for improved hydrodynamics and biofouling mitigation in membrane filtration.

机构信息

King Abdullah University of Science and Technology (KAUST), Water Desalination and Reuse Center (WDRC), Biological and Environmental Science and Engineering (BESE), Thuwal, 23955-6900, Saudi Arabia.

School of Civil and Environmental Engineering, University of Technology, Sydney, Post Box 129, Broadway, NSW, 2007, Australia.

出版信息

Sci Rep. 2021 Mar 26;11(1):6979. doi: 10.1038/s41598-021-86459-w.

Abstract

Feed spacers are the critical components of any spiral-wound filtration module, dictating the filtration performance. Three spacer designs, namely a non-woven commercial spacer (varying filament cross-section), a symmetric pillar spacer, and a novel hole-pillar spacer (constant filament diameter) were studied using Direct Numerical Simulations (DNS), 3-D printed and subsequently experimentally tested in a lab-scale ultrafiltration set-up with high biofouling potential feed water at various feed pressures. Independent of the applied pressure, the novel hole-pillar spacer showed initially the lowest feed channel pressure drop, the lowest shear stress, and the highest permeate flux compared to the commercial and pillar spacers. Furthermore, less biofilm thickness development on membrane surface was visualized by Optical Coherent Tomography (OCT) imaging for the proposed hole-pillar spacer. At higher feed pressure, a thicker biofilm developed on membrane surface for all spacer designs explaining the stronger decrease in permeate flux at high pressure. The findings systematically demonstrated the role of various spacer designs and applied pressure on the performance of pre-treatment process, while identifying specific shear stress distribution guidelines for engineering a new spacer design in different filtration techniques.

摘要

料垫是任何螺旋缠绕式过滤模块的关键组成部分,决定着过滤性能。使用直接数值模拟(DNS)、3D 打印和随后在具有高生物污染潜力进料水的实验室规模超滤装置中进行的实验测试了三种料垫设计,即非织造商业料垫(变化的长丝横截面)、对称柱料垫和新型孔柱料垫(恒定长丝直径)。独立于所施加的压力,与商业料垫和柱料垫相比,新型孔柱料垫最初显示出最低的进料通道压降、最低的剪切应力和最高的渗透通量。此外,通过光学相干断层扫描(OCT)成像可以在膜表面上可视化观察到拟议的孔柱料垫上的生物膜厚度发展较少。在较高的进料压力下,所有料垫设计的膜表面上都会形成较厚的生物膜,这解释了在高压下渗透通量的强烈下降。研究结果系统地展示了各种料垫设计和应用压力对预处理过程性能的作用,同时为不同过滤技术中的新型料垫设计确定了特定的剪切应力分布指南。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c5d3/7998016/205da55a0066/41598_2021_86459_Fig1_HTML.jpg

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