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Energy assessment of an integrated hydrogen production system

dc.contributor.authorShahin, Mohamed S
dc.contributor.authorOrhan, Mehmet F
dc.contributor.authorSaka, Kenan
dc.contributor.authorHamada, Ahmed T.
dc.contributor.authorUygul, Faruk
dc.contributor.buuauthorSAKA, KENAN
dc.contributor.departmentYenişehir İbrahim Orhan Meslek Yüksekokulu
dc.contributor.orcid0000-0002-2296-894X
dc.contributor.scopusid56865845300
dc.date.accessioned2025-05-13T06:17:16Z
dc.date.issued2023-02-01
dc.description.abstractHydrogen is believed to be the future energy carrier that will reduce environmental pollution and solve the current energy crisis, especially when produced from a renewable energy source. Solar energy is a renewable source that has been commonly utilized in the production process of hydrogen for years because it is inexhaustible, clean, and free. Generally, hydrogen is produced by means of a water splitting process, mainly electrolysis, which requires energy input provided by harvesting solar energy. The proposed model integrates the solar harvesting system into a conventional Rankine cycle, producing electrical and thermal power used in domestic applications, and hydrogen by high temperature electrolysis (HTE) using a solid oxide steam electrolyzer (SOSE). The model is divided into three subsystems: the solar collector(s), the steam cycle, and an electrolysis subsystem, where the performance of each subsystem and their effect on the overall efficiency is evaluated thermodynamically using first and second laws. A parametric study investigating the hydrogen production rate upon varying system operating conditions (e.g. solar flux and area of solar collector) is conducted on both parabolic troughs and heliostat fields as potential solar energy harvesters. Results have shown that, heliostat-based systems were able to attain optimum performance with an overall thermal efficiency of 27% and a hydrogen production rate of 0.411 kg/s, whereas, parabolic trough-based systems attained an overall thermal efficiency of 25.35% and produced 0.332 kg/s of hydrogen.
dc.identifier.doi10.1016/j.ijft.2022.100262
dc.identifier.issn26662027
dc.identifier.scopus2-s2.0-85145649242
dc.identifier.urihttps://hdl.handle.net/11452/51515
dc.identifier.volume17
dc.indexed.scopusScopus
dc.language.isoen
dc.publisherElsevier
dc.relation.journalInternational Journal of Thermofluids
dc.rightsinfo:eu-repo/semantics/openAccess
dc.subjectThermodynamic analysis
dc.subjectSolar
dc.subjectRankine cycle
dc.subjectParabolic trough
dc.subjectHydrogen production
dc.subjectHeliostat field
dc.subjectElectrolyzer
dc.subject.scopusIntegrated Energy Systems for Hydrogen Production
dc.titleEnergy assessment of an integrated hydrogen production system
dc.typeArticle
dspace.entity.typePublication
local.contributor.departmentYenişehir İbrahim Orhan Meslek Yüksekokulu
local.indexed.atScopus
relation.isAuthorOfPublication71b67ffd-8bd5-46d4-a9c8-3395c028402c
relation.isAuthorOfPublication.latestForDiscovery71b67ffd-8bd5-46d4-a9c8-3395c028402c

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