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Three-Dimensionally Printed Microfluidic Cross-flow System for Ultrafiltration/Nanofiltration Membrane Performance Testing.用于超滤/纳滤膜性能测试的三维打印微流控错流系统
J Vis Exp. 2016 Feb 13(108):53556. doi: 10.3791/53556.
2
Fouling of nanofiltration, reverse osmosis, and ultrafiltration membranes by protein mixtures: the role of inter-foulant-species interaction.蛋白质混合物对纳滤、反渗透和超滤膜的污染:种间相互作用的作用。
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本文引用的文献

1
A mini-review on membrane fouling.膜污染的小型综述。
Bioresour Technol. 2012 Oct;122:27-34. doi: 10.1016/j.biortech.2012.04.089. Epub 2012 May 2.
2
Colloidal interactions and fouling of NF and RO membranes: a review.纳滤和反渗透膜的胶体相互作用和污染:综述。
Adv Colloid Interface Sci. 2011 May 11;164(1-2):126-43. doi: 10.1016/j.cis.2010.10.007. Epub 2010 Oct 31.
3
Surface modification of dense membranes using radical graft polymerization enhanced by monomer filtration.采用单体过滤增强的自由基接枝聚合对致密膜进行表面改性。
Langmuir. 2010 Jul 20;26(14):12358-65. doi: 10.1021/la1017278.
4
Fatty acid fouling of reverse osmosis membranes: implications for wastewater reclamation.反渗透膜的脂肪酸污染:对废水回收利用的影响。
Water Res. 2008 Oct;42(16):4393-403. doi: 10.1016/j.watres.2008.07.032. Epub 2008 Aug 3.
5
Membranes and microfluidics: a review.膜与微流体学:综述
Lab Chip. 2006 Sep;6(9):1125-39. doi: 10.1039/b603275c. Epub 2006 Jul 14.

用于超滤/纳滤膜性能测试的三维打印微流控错流系统

Three-Dimensionally Printed Microfluidic Cross-flow System for Ultrafiltration/Nanofiltration Membrane Performance Testing.

作者信息

Wardrip Nathaniel C, Arnusch Christopher J

机构信息

Department of Desalination and Water Treatment, Zuckerberg Institute for Water Research, Jacob Blaustein Institutes for Desert Research, Ben-Gurion University of the Negev, Sede-Boqer Campus.

Department of Desalination and Water Treatment, Zuckerberg Institute for Water Research, Jacob Blaustein Institutes for Desert Research, Ben-Gurion University of the Negev, Sede-Boqer Campus;

出版信息

J Vis Exp. 2016 Feb 13(108):53556. doi: 10.3791/53556.

DOI:10.3791/53556
PMID:26968008
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4828156/
Abstract

Minimization and management of membrane fouling is a formidable challenge in diverse industrial processes and other practices that utilize membrane technology. Understanding the fouling process could lead to optimization and higher efficiency of membrane based filtration. Here we show the design and fabrication of an automated three-dimensionally (3-D) printed microfluidic cross-flow filtration system that can test up to 4 membranes in parallel. The microfluidic cells were printed using multi-material photopolymer 3-D printing technology, which used a transparent hard polymer for the microfluidic cell body and incorporated a thin rubber-like polymer layer, which prevents leakages during operation. The performance of ultrafiltration (UF), and nanofiltration (NF) membranes were tested and membrane fouling could be observed with a model foulant bovine serum albumin (BSA). Feed solutions containing BSA showed flux decline of the membrane. This protocol may be extended to measure fouling or biofouling with many other organic, inorganic or microbial containing solutions. The microfluidic design is especially advantageous for testing materials that are costly or only available in small quantities, for example polysaccharides, proteins, or lipids due to the small surface area of the membrane being tested. This modular system may also be easily expanded for high throughput testing of membranes.

摘要

在各种工业过程以及其他采用膜技术的实践中,将膜污染降至最低并加以管理是一项艰巨的挑战。了解污染过程有助于实现基于膜的过滤的优化并提高效率。在此,我们展示了一种自动三维(3-D)打印微流控错流过滤系统的设计与制造,该系统可同时对多达4个膜进行测试。微流控单元采用多材料光聚合3-D打印技术打印而成,其微流控单元主体使用透明硬质聚合物,并结合了一层薄的橡胶状聚合物层,可防止运行期间泄漏。对超滤(UF)和纳滤(NF)膜的性能进行了测试,并且使用模型污染物牛血清白蛋白(BSA)可观察到膜污染。含有BSA的进料溶液显示出膜通量下降。该方案可扩展用于测量许多其他含有有机、无机或微生物的溶液的污染或生物污染。由于被测膜的表面积较小,微流控设计对于测试昂贵或数量有限的材料(例如多糖、蛋白质或脂质)特别有利。该模块化系统也可轻松扩展以进行膜的高通量测试。