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Investigation of the performance behavior of a forward osmosis membrane system using various feed spacer materials fabricated by 3D printing technique

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Abstract
Recently, feed spacer research for improving the performance of a membrane module has adopted three-dimensional (3D) printing technology. This study aims to improve the performance of membrane feed spacers by using various materials and incorporating 3D printing. The samples were fabricated after modeling with 3D computer-aided design (CAD) software to investigate the mechanical strength, water flux, reverse solute flux, and fouling performances. This research was performed using acrylonitrile butadiene styrene (ABS), polypropylene (PP), and natural polylactic acid (PLA) as printing material, and the spacer model was produced using a diamond-shaped feed spacer, with a commercially available product as a reference. The 3D printed samples were initially compared in terms of size and precision with the 3D CAD model, and deviations were observed between the products and the CAD model. Then, the spacers were tested in terms of mechanical strength, water flux, reverse solute flux, and fouling (alginate-based waste water was used as a model foulant). Although there was not much difference among the samples regarding the water flux, better performances than the commercial product were obtained for reverse solute flux and fouling resistance. When comparing the prominent performance of natural PLA with the commercial product, PLA was found to have approximately 10% less fouling (based on foulant volume per unit area and root mean square roughness values), although it showed similar water flux. Thus, another approach has been introduced for using bio-degradable materials for membrane spacers. (C) 2018 Elsevier Ltd. All rights reserved.
Author(s)
Yanar, NumanSon, MoonYang, EunmokKim, YejiPark, HosikNam, Seung-EunChoi, Heechul
Issued Date
2018-07
Type
Article
DOI
10.1016/j.chemosphere.2018.03.147
URI
https://scholar.gist.ac.kr/handle/local/13208
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
Citation
Chemosphere, v.202, pp.708 - 715
ISSN
0045-6535
Appears in Collections:
Department of Environment and Energy Engineering > 1. Journal Articles
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