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DC Field | Value | Language |
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dc.contributor.author | Saebea D. | |
dc.contributor.author | Authayanun S. | |
dc.contributor.author | Patcharavorachot Y. | |
dc.contributor.author | Soisuwan S. | |
dc.contributor.author | Assabumrungrat S. | |
dc.contributor.author | Arpornwichanop A. | |
dc.date.accessioned | 2021-04-05T03:22:54Z | - |
dc.date.available | 2021-04-05T03:22:54Z | - |
dc.date.issued | 2017 | |
dc.identifier.issn | 22839216 | |
dc.identifier.other | 2-s2.0-85021658559 | |
dc.identifier.uri | https://ir.swu.ac.th/jspui/handle/123456789/13258 | - |
dc.identifier.uri | https://www.scopus.com/inward/record.uri?eid=2-s2.0-85021658559&doi=10.3303%2fCET1757272&partnerID=40&md5=a21ab05e0a1c11c125503ee3acfe6641 | |
dc.description.abstract | High-temperature solid oxide electrolysis cells (SOECs) are promising technologies to store excess renewable energy generation. In this work, the mathematical model of SOEC, which can describe the behaviour of a cathode-supported SOEC operating for H2O and CO2 co-electrolysis, is developed from mass balance, dusty gas model, and electrochemical model. The validated SOEC model is used to analyse the influence of the reversible water-gas shift reaction taking place on the cathode on the performance of the SOEC for syngas production. The simulation results show that the reverse water-gas shift reaction is highly pronounced at the cathode surface due to high CO2 component and can contribute to CO production. The rate of water-gas shift reaction increases along the depth of the cathode to the three-phase boundary. At the three-phase boundary, an increase in operating temperatures results in the enhancement of the rate of water-gas shift reaction. Additionally, regarding the SOEC performance, the electrical energy consumed for co-electrolysis in SOEC decreases with increasing temperature because the activation overpotentials and ohmic overpotentials are lower. © Copyright 2017, AIDIC Servizi S.r.l. | |
dc.subject | Carbon dioxide | |
dc.subject | Cathodes | |
dc.subject | Electrodes | |
dc.subject | Electrolysis | |
dc.subject | Electrolytic cells | |
dc.subject | Gases | |
dc.subject | Renewable energy resources | |
dc.subject | Solid oxide fuel cells (SOFC) | |
dc.subject | Synthesis gas | |
dc.subject | Temperature | |
dc.subject | Water gas shift | |
dc.subject | Electrochemical modeling | |
dc.subject | Increasing temperatures | |
dc.subject | Operating temperature | |
dc.subject | Performance analysis | |
dc.subject | Renewable energy generation | |
dc.subject | Reverse water-gas shift reaction | |
dc.subject | Three phase boundary | |
dc.subject | Water gas shift (WGS) reaction | |
dc.subject | Regenerative fuel cells | |
dc.title | Performance analysis of solid-oxide electrolysis cells for syngas production by H2O/CO2 co-electrolysis | |
dc.type | Article | |
dc.rights.holder | Scopus | |
dc.identifier.bibliograpycitation | Chemical Engineering Transactions. Vol 57, (2017), p.1627-1632 | |
dc.identifier.doi | 10.3303/CET1757272 | |
Appears in Collections: | Scopus 1983-2021 |
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