LAPSE:2023.5745
Published Article
LAPSE:2023.5745
A Dual Reactor for Isothermal Thermochemical Cycles of H2O/CO2 Co-Splitting Using La0.3Sr0.7Co0.7Fe0.3O3 as an Oxygen Carrier
Tatiya Khamhangdatepon, Thana Sornchamni, Nuchanart Siri-Nguan, Navadol Laosiripojana, Unalome Wetwatana Hartley
February 23, 2023
Abstract
Catalytic performance of La0.3Sr0.7Co0.7Fe0.3O3 (LSCF3773 or LSCF) catalyst for syngas production via two step thermochemical cycles of H2O and CO2 co-splitting was investigated. Oxygen storage capacity (OSC) was found to depend on reduction temperature, rather than the oxidation temperature. The highest oxygen vacancy (Δδ) was achieved when the reduction and oxidation temperature were both fixed at 900 °C with the feed ratio (H2O to CO2) of 3 to 1, with an increasing amount of CO2 in the feed mixture. CO productivity reached its plateau at high ratios of H2O to CO2 (1:1, 1:2, and 1:2.5), while the total productivities were reduced with the same ratios. This indicated the existence of a CO2 blockage, which was the result of either high Ea of CO2 dissociation or high Ea of CO desorption, resulting in the loss in active species. From the results, it can be concluded that H2O and CO2 splitting reactions were competitive reactions. Ea of H2O and CO2 splitting was estimated at 31.01 kJ/mol and 48.05 kJ/mol, respectively, which agreed with the results obtained from the experimentation of the effect of the oxidation temperature. A dual-reactors system was applied to provide a continuous product stream, where the operation mode was switched between the reduction and oxidation step. The isothermal thermochemical cycles process, where the reduction and oxidation were performed at the same temperature, was also carried out in order to increase the overall efficiency of the process. The optimal time for the reduction and oxidation step was found to be 30 min for each step, giving total productivity of the syngas mixture at 28,000 μmol/g, approximately.
Keywords
CO2 utilization, continuous two-step thermochemical cycles, La0.3Sr0.7Co0.7Fe0.3O3, LSCF, perovskite, synthesis gas production
Suggested Citation
Khamhangdatepon T, Sornchamni T, Siri-Nguan N, Laosiripojana N, Hartley UW. A Dual Reactor for Isothermal Thermochemical Cycles of H2O/CO2 Co-Splitting Using La0.3Sr0.7Co0.7Fe0.3O3 as an Oxygen Carrier. (2023). LAPSE:2023.5745
Author Affiliations
Khamhangdatepon T: Mechanical and Process Engineering Department, Sirindhorn International Institute of Technology, King Mongkut’s University of Technology North Bangkok, Bangkok 10800, Thailand
Sornchamni T: PTT Research and Technology Institute, PTT Public Company Limited, Bangkok 10900, Thailand
Siri-Nguan N: PTT Research and Technology Institute, PTT Public Company Limited, Bangkok 10900, Thailand
Laosiripojana N: The Joint Graduate School of Energy and Environment, King Mongkut’s University of Technology Thonburi, Bangkok 10140, Thailand
Hartley UW: Mechanical and Process Engineering Department, Sirindhorn International Institute of Technology, King Mongkut’s University of Technology North Bangkok, Bangkok 10800, Thailand; The Joint Graduate School of Energy and Environment, King Mongkut’s Univer [ORCID]
Journal Name
Processes
Volume
9
Issue
6
First Page
1018
Year
2021
Publication Date
2021-06-09
ISSN
2227-9717
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Original Submission
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PII: pr9061018, Publication Type: Journal Article
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LAPSE:2023.5745
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