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Carbon to electricity in a solid oxide fuel cell combined with an internal catalytic gasification process
Authors:M. Konsolakis  G. E. Marnellos  A. Al-Musa  N. Kaklidis  I. Garagounis  V. Kyriakou
Affiliation:1. School of Production Engineering and Management, Technical University of Crete, GR-73100, Chania, Crete, Greece;2. Department of Mechanical Engineering, University of Western Macedonia, GR-50100 Kozani, Greece;3. National Center for Combustion and Plasma Technologies, Water and Energy Research Institute, King Abdulaziz City for Science and Technology KACST, P.0. Box 6086, 11442, Riyadh, Saudi Arabia;4. Chemical Process&Energy Resources Institute, CERTH, GR-57001 Thermi, Thessaloniki, Greece
Abstract:This study explores strategies to develop highly efficient direct carbon fuel cells (DCFCs) by com‐bining a solid‐oxide fuel cell (SOFC) with a catalyst‐aided carbon‐gasification process. This system employs Cu/CeO2 composites as both anodic electrodes and carbon additives in a cell of the type:carbon|Cu‐CeO2/YSZ/Ag|air. The study investigates the impact on in situ carbon‐gasification and DCFC performance characteristics of catalyst addition and variation in the carrier gas used (inert He versus reactive CO2). The results indicate that cell performance is significantly improved by infusing the catalyst into the carbon feedstock and by employing CO2 as the carrier gas. At 800 °C, the maxi‐mum power output is enhanced by approximately 40% and 230% for carbon/CO2 and car‐bon/catalyst/CO2 systems, respectively, compared with that of the carbon/He configuration. The increase observed when employing the catalyst and CO2 as the carrier gas can be primarily at‐tributed to the pronounced effect of the catalyst on carbon‐gasification through the re‐verse‐Boudouard reaction, and the subsequent in situ electro‐oxidation of CO at the anode three‐phase boundary.
Keywords:Direct carbon fuel cell  Internal catalytic gasification  Copper/ceria anode  Copper/ceria catalyst
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