Simple scalable approach to advanced membrane module design and hydrogen separation performance using twelve replaceable palladium-coated Al2O3 hollow fibre membranes
- Authors
- Lim, Soomin; Magnone, Edoardo; Shin, Min Chang; Kang, Jeong Won; Lee, Kwan-Young; Jeong, Chang-Hun; Park, Jung Hoon
- Issue Date
- 25-10월-2022
- Publisher
- ELSEVIER SCIENCE INC
- Keywords
- Membrane module design; Hydrogen separation properties; Palladium coatings; Electroless plating process; Al2O3 hollow fibre supports
- Citation
- JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, v.114, pp.391 - 401
- Indexed
- SCIE
SCOPUS
KCI
- Journal Title
- JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY
- Volume
- 114
- Start Page
- 391
- End Page
- 401
- URI
- https://scholar.korea.ac.kr/handle/2021.sw.korea/145659
- DOI
- 10.1016/j.jiec.2022.07.028
- ISSN
- 1226-086X
- Abstract
- A phase-inversion approach was used to manufacture Al2O3 hollow fibre supports, which were then sin-tered at 1723 K. The electroless plating technique is developed to prepare palladium-coatedAl(2)O(3) hollow fibre membranes for hydrogen separation. Three different scaling-up configurations were produced and tested: single membrane, membrane unit obtained by assembling three membranes, and advanced membrane module obtained by assembling twelve replaceable membranes. The hydrogen flux was investigated under vacuum and without vacuum using a feed gas of pure H-2 (100%) and a binary feed gas mixture of H-2 (80%) and CO2 (20%) at different feed gas pressures (100-800 kPa), feed gas rate (0.2-6. 0 L min(-1)), and temperature (673-723 K). The hydrogen flux increases from 0.2162 mol m(-2) s(-1) (feed gas pressure = 600 kPa, feed gas rate = 0.2 L min(-1)) to 0.4487 mol m(-2) s(-1) (feed gas pressure = 800 kP a, feed gas rate = 6.0 L min(-1)) under the binary gas mixture at 723 K by switching from a single to the advanced membrane module, while the hydrogen purity remains above 97.5% throughout the experiment. Some aspects about the scalability of palladium-coated Al2O3 hollow fibre membranes for hydrogen separation are discussed. (C) 2022 The Korean Society of Industrial and Engineering Chemistry. Published by Elsevier B.V. All rights reserved.
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Collections - College of Engineering > Department of Chemical and Biological Engineering > 1. Journal Articles
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