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  4. Performance analysis of solid-oxide electrolysis cells for syngas production by H2O/CO2 co-electrolysis
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Performance analysis of solid-oxide electrolysis cells for syngas production by H2O/CO2 co-electrolysis

Author(s)
Saebea, Dang
Authayanun, Suthida
Patcharavorachot, Yaneeporn
Soisuwan, Soipatta
Assabumrungrat, Suttichai
Arpornwichanop, Amornchai
Date Issued
January 1, 2017
Type
Article
DOI
10.3303/CET1757272
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.
Citation
Chemical Engineering Transactions, 57, 1627-1632, 2017
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