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Research on Pure Hydrogen Production Using a Fuel-Processing System Combined with a PSA System

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dc.contributor.authorKo, Seokkyun-
dc.contributor.authorLee, Sangyong-
dc.date.accessioned2024-08-08T12:00:39Z-
dc.date.available2024-08-08T12:00:39Z-
dc.date.issued2023-11-
dc.identifier.issn2076-3417-
dc.identifier.issn2076-3417-
dc.identifier.urihttps://scholarworks.dongguk.edu/handle/sw.dongguk/21916-
dc.description.abstractResearch was conducted to improve the system efficiency of a fuel-processing system combined with a hydrogen-purification system to supply hydrogen to a 10 kW residential building proton-exchange membrane fuel cell (PEMFC). The system consists of a steam-reforming reactor, a water-gas shift reactor, heat exchangers and a pressure swing adsorption (PSA) system, increasing the purity of the produced hydrogen by over 99.97%. Aspen Plus (R) and Aspen adsorption (R) simulators were used to optimize operating conditions by calculating thermal efficiency and hydrogen-production yield under various temperature and pressure conditions in the reformer. To optimize the hydrogen-production system, simulations were performed under conditions of 1 to 10 atm and 600 to 1000 degrees C, and simulations were also performed while maintaining the PSA pressure at 9 atm. The overall system efficiency was expressed as a function of methane conversion, and the methane conversion was expressed as a function of reformer temperature and pressure. The fuel-processing system showed the highest thermal efficiency of 82.40% at a pressure of 1 atm and a temperature range of 800 degrees C. For the combined system of a fuel-processing system and a hydrogen-purification system, the highest hydrogen-production yield was 43.17% at 800 degrees C and 1 atm.-
dc.format.extent23-
dc.language영어-
dc.language.isoENG-
dc.publisherMDPI-
dc.titleResearch on Pure Hydrogen Production Using a Fuel-Processing System Combined with a PSA System-
dc.typeArticle-
dc.publisher.location스위스-
dc.identifier.doi10.3390/app132111947-
dc.identifier.scopusid2-s2.0-85192376788-
dc.identifier.wosid001100400700001-
dc.identifier.bibliographicCitationApplied Sciences, v.13, no.21, pp 1 - 23-
dc.citation.titleApplied Sciences-
dc.citation.volume13-
dc.citation.number21-
dc.citation.startPage1-
dc.citation.endPage23-
dc.type.docTypeArticle-
dc.description.isOpenAccessY-
dc.description.journalRegisteredClassscie-
dc.description.journalRegisteredClassscopus-
dc.relation.journalResearchAreaChemistry-
dc.relation.journalResearchAreaEngineering-
dc.relation.journalResearchAreaMaterials Science-
dc.relation.journalResearchAreaPhysics-
dc.relation.journalWebOfScienceCategoryChemistry, Multidisciplinary-
dc.relation.journalWebOfScienceCategoryEngineering, Multidisciplinary-
dc.relation.journalWebOfScienceCategoryMaterials Science, Multidisciplinary-
dc.relation.journalWebOfScienceCategoryPhysics, Applied-
dc.subject.keywordPlusPRESSURE SWING ADSORPTION-
dc.subject.keywordPlusWATER-GAS SHIFT-
dc.subject.keywordPlusDISTRIBUTED GENERATION-
dc.subject.keywordPlusCO2 CAPTURE-
dc.subject.keywordPlusCARBON-DIOXIDE-
dc.subject.keywordPlusCELL-
dc.subject.keywordPlusMETHANE-
dc.subject.keywordPlusPERFORMANCE-
dc.subject.keywordPlusTECHNOLOGY-
dc.subject.keywordPlusSIMULATION-
dc.subject.keywordAuthorhydrogen production-
dc.subject.keywordAuthorhydrogen processing system-
dc.subject.keywordAuthorPSA-
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