Please use this identifier to cite or link to this item: http://repositorio.ugto.mx/handle/20.500.12059/4638
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dc.rights.licensehttp://creativecommons.org/licenses/by-nc-nd/4.0es_MX
dc.contributorFRANCISCO ELIZALDE BLANCAS-
dc.creatorDULCE MARIA SILVA MOSQUEDA-
dc.date.accessioned2021-04-22T17:36:02Z-
dc.date.available2021-04-22T17:36:02Z-
dc.date.issued2019-09-
dc.identifier.urihttp://repositorio.ugto.mx/handle/20.500.12059/4638-
dc.description.abstractIn the present work, a combined experimental and numerical investigation towards methane reforming using intermediate temperature solid oxide fuel cells (IT-SOFCs) with different gas compositions is presented. Steam methane reforming has been investigated from the perspective of methane conversion, hydrogen yield, power delivered, and cell stability. Different ratios between methane, steam, carbon dioxide, carbon monoxide and hydrogen were used in order to simulate different grades of methane internal reforming in the SOFC. Experimentally, it is reported an extensive characterization of these commercial anode-supported single cells by means of electrochemical impedance spectroscopy (EIS) and the distribution of relaxation times (DRT) method, polarization (I-V) curves and gas composition and temperature analyses for three different reformate compositions. Simultaneous gas and temperature analyses were carried out throughout the anode by means of an in-house built validated spot-sampling set-up. Additionally, in order to analyze the effect on the performance and stability of these planar IT-SOFC systems under internal reforming, a long-term test has been also carried out. Also, in this case, localized gas analyses and temperature measurements were frequently carried out, as well as EIS and I-V curves. The impedance spectra have been also analyzed through the DRT method and the cell study complemented with a post-mortem analysis. Furthermore, a comprehensive zero-dimensional (0D) model of the tested samples, incorporating thermodynamic equilibrium and some experimental parameters, has been also validated by confronting the simulated polarization curves with the experimental ones. Thermodynamic equilibrium modeling was employed to determine the concentrations of each gas species in the equilibrium state. Finally, an additional 2D model, based on finite differences and combined with some experimental results, has been also implemented for a mapping of the current density distribution over the anode.es_MX
dc.language.isoenges_MX
dc.publisherUniversidad de Guanajuatoes_MX
dc.rightsinfo:eu-repo/semantics/openAccesses_MX
dc.subject.classificationCIS- Maestría en Ingeniería Mecánica-
dc.titleExperimental Study on the Performance of a Single Sofc During Internal Reforminges_MX
dc.typeinfo:eu-repo/semantics/masterThesises_MX
dc.creator.idinfo:eu-repo/dai/mx/cvu/715410es_MX
dc.subject.ctiinfo:eu-repo/classification/cti/7es_MX
dc.subject.ctiinfo:eu-repo/classification/cti/33-
dc.subject.ctiinfo:eu-repo/classification/cti/3313-
dc.subject.keywordsSOFC (Solid Oxide Fuel Cell)es_MX
dc.subject.keywordsInternal Reforminges_MX
dc.subject.keywordsAnode Sidees_MX
dc.subject.keywordsEIS (Electrochemical Impedance Spectroscopy)es_MX
dc.subject.keywordsDRT (Distribution of Relaxation Times)es_MX
dc.subject.keywordsGas Aanalysises_MX
dc.subject.keywordsTemperature distributiones_MX
dc.subject.keywordsDegradationes_MX
dc.subject.keywordsLTE (Local Temperature Equilibrium)es_MX
dc.contributor.idinfo:eu-repo/dai/mx/cvu/43798es_MX
dc.contributor.roledirectores_MX
dc.type.versioninfo:eu-repo/semantics/publishedVersiones_MX
dc.contributor.oneStephen J. McPhail-
dc.contributor.idoneinfo:eu-repo/dai/mx/orcid/0000-0003-3045-0945es_MX
dc.contributor.roleonedirectores_MX
Appears in Collections:Maestría en Ingeniería Mecánica

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