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3D打印抗污染复合膜

3D Printed Fouling-Resistant Composite Membranes.

作者信息

Mazinani Saeed, Al-Shimmery Abouther, Chew Y M John, Mattia Davide

机构信息

Department of Chemical Engineering, Centre for Advanced Separations Engineering , University of Bath , Claverton Down, Bath BA2 7AY , U.K.

出版信息

ACS Appl Mater Interfaces. 2019 Jul 24;11(29):26373-26383. doi: 10.1021/acsami.9b07764. Epub 2019 Jul 11.

DOI:10.1021/acsami.9b07764
PMID:31294955
Abstract

Fouling remains a long-standing unsolved problem that hinders the widespread use of membrane applications in industry. This article reports the use of numerical simulations coupled with extensive material synthesis and characterization to fabricate fouling-resistant 3D printed composite membranes. The membranes consist of a thin polyethersulfone selective layer deposited onto a 3D printed flat and double sinusoidal (wavy) support. Fouling and cleaning of the composite membranes were tested by using bovine serum albumin solution in a cross-flow ultrafiltration setup. The transmembrane pressure was regulated at 1 bar and the cross-flow Reynolds number () varied between 400 and 1000. In comparison to the flat membrane, the wavy membrane showed superior performance in terms of pure water permeance (PWP) (10% higher) and permeance recovery ratio (87% vs 53%) after the first filtration cycle at = 1000. Prolong testing showed that the wavy membrane could retain approximately 87% of its initial PWP after 10 complete filtration cycles. This impressive fouling-resistant behavior is attributed to the localized fluid turbulence induced by the 3D printed wavy structure. These results show that not only the lifetime of membrane operations could be favorably extended but also the operational costs and environmental damage of membrane-based processes could also be significantly reduced.

摘要

膜污染仍然是一个长期未解决的问题,阻碍了膜应用在工业中的广泛使用。本文报道了结合大量材料合成与表征的数值模拟方法,用于制造抗污染的3D打印复合膜。这些膜由沉积在3D打印的平面和双正弦(波浪形)支撑体上的薄聚醚砜选择层组成。在错流超滤装置中使用牛血清白蛋白溶液对复合膜的污染和清洗进行了测试。跨膜压力调节为1巴,错流雷诺数()在400至1000之间变化。与平板膜相比,在 = 1000时的第一个过滤循环后,波浪形膜在纯水通量(PWP)(高10%)和通量恢复率(87%对53%)方面表现出优异的性能。长期测试表明,经过10个完整的过滤循环后,波浪形膜可以保留其初始PWP的约87%。这种令人印象深刻的抗污染行为归因于3D打印波浪形结构引起的局部流体湍流。这些结果表明,不仅可以有利地延长膜操作的寿命,而且还可以显著降低基于膜的工艺的运营成本和环境破坏。

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