Please use this identifier to cite or link to this item: https://hdl.handle.net/10216/176244
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dc.creatorR. Santos, TM
dc.creatorSousa, JM
dc.creatorRelvas, F
dc.creatorAdélio Mendes
dc.date.accessioned2026-08-12T01:32:17Z-
dc.date.available2026-08-12T01:32:17Z-
dc.date.issued2026
dc.identifier.issn0888-5885
dc.identifier.othersigarra:787929
dc.identifier.urihttps://hdl.handle.net/10216/176244-
dc.description.abstract<jats:title>Abstract</jats:title> <jats:p>The growing demand for ultrapure hydrogen in fuel cell applications requires the development of efficient and cost-effective purification technologies. This study reports the development, optimization, and techno-economic assessment of a vacuum-pressure swing adsorption (VPSA) system for hydrogen drying in compliance with the ISO 14687-2 standard. Activated alumina was employed as the adsorbent, and experimental validation demonstrated a reduction in water content to dew points below 65.5 °C, with a concentration of 5 mol of H2O per mol of H2. Adsorption isotherms for hydrogen and water were measured and modeled using the Langmuir and Toth-Aranovich-Donohue equations. Several regeneration strategies were evaluated, with the combined application of vacuum and purge gas identified as the most effective. A Box-Behnken response surface methodology was employed to optimize operating parameters, and the optimal conditions were experimentally validated. Under these conditions, the VPSA achieved a hydrogen recovery of 98.98%, a productivity of 3.92 kgH2·kgads1·cycle1, and a dew point of 66.76 °C. A techno-economic analysis of a hypothetical unit producing 300 kg·h1 of hydrogen, scaled from laboratory data, demonstrated the economic feasibility of the VPSA process. When hydrogen was fed in a compressed state at 7.34 bar, the additional specific energy consumption and cost associated with the purification step were estimated at 0.038 kWh·kg1 and 0.039 €·kg1 of H2, respectively. These results highlight the VPSA system as a promising solution for high-purity hydrogen drying, combining robust operational performance with strong economic viability.</jats:p>
dc.language.isoeng
dc.relationinfo:eu-repo/grantAgreement/IAPMEI - Agência para a Competitividade e Inovação, I.P./Plano de Recuperação e Resiliência - Agendas Mobilizadoras/PRR - C644930471-00000041/M-ECO2: Cluster industrial para a produção de biocombustíveis avançados/M-ECO2
dc.relationinfo:eu-repo/grantAgreement/COMISSÃO EUROPEIA/Horizonte Europa | Clean Hydrogen JU/101251004//NEREUS
dc.relationinfo:eu-repo/grantAgreement/FCT - Fundação para a Ciência e a Tecnologia/Programa de Financiamento Plurianual de Unidades de I&D/UIDB/00511/2020_UIDP/00511/2020/Financiamento Plurianual 2020-2023 da Unidade de I&D LEPABE - Laboratório de Engenharia de Processos, Ambiente, Biotecnologia e Energia/LEPABE
dc.relationinfo:eu-repo/grantAgreement/FCT - Fundação para a Ciência e a Tecnologia/Programa de Financiamento Plurianual de Unidades de I&D/LA/P/0045/2020/ALiCE - Laboratório Associado em Engenharia Química/ALiCE
dc.rightsopenAccess
dc.titleHigh-Performing Vacuum-Pressure Swing Adsorption Unit for Drying Hydrogen from Water Electrolysis
dc.typeArtigo em Revista Científica Internacional
dc.contributor.uportoFaculdade de Engenharia
dc.identifier.doi10.1021/acs.iecr.6c00750
dc.identifier.authenticusP-01C-ZX1
Appears in Collections:FEUP - Artigo em Revista Científica Internacional

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