TY - CONF
T1 - Evaluating CO2 desorption performance in CO2-loaded MEA solution with bifunctional catalysts
AU - Zhang, Xiaowen
AU - Liu, Helei
AU - Tontiwachwuthikul, Paitoon
AU - Liang, Zhiwu
N1 - Publisher Copyright:
© 2018 GHGT 2018 - 14th International Conference on Greenhouse Gas Control Technologies. All rights reserved.
PY - 2018
Y1 - 2018
N2 - In this work, four bifunctional Al2O3/HZSM-5 catalysts (Al-ZSM) were prepared and characterized with various techniques. The regeneration behaviors of a 5 M monoethanolamine (MEA) solvent with four Al-ZSM catalysts were studied at an initial CO2 loading of 0.5 mol CO2/mol amine and the temperature of 96 °C. The results reveal that all the catalysts improve the CO2 desorption performance, the Al-ZSM catalysts show higher catalytic performance than the virginal catalysts, and the Al-ZSM can decrease the regeneration energy requirement by 23.3-34.2% as compared with the catalyst-free test. The prominent activities of Al-ZSM can be attributed to their improved Brϕnsted acid sites (BAS), mesopore surface area (MSA) and basic sites, which resulted from the good synergistic reaction between the Al2O3 and HZSM-5. From the results of this study, the Al-ZSM catalysts demonstrate superior catalytic performances for the rich MEA solvent regeneration process, and show an excellent stability, explicitly have the potential to be a promising industrial catalyst for CO2 capture.
AB - In this work, four bifunctional Al2O3/HZSM-5 catalysts (Al-ZSM) were prepared and characterized with various techniques. The regeneration behaviors of a 5 M monoethanolamine (MEA) solvent with four Al-ZSM catalysts were studied at an initial CO2 loading of 0.5 mol CO2/mol amine and the temperature of 96 °C. The results reveal that all the catalysts improve the CO2 desorption performance, the Al-ZSM catalysts show higher catalytic performance than the virginal catalysts, and the Al-ZSM can decrease the regeneration energy requirement by 23.3-34.2% as compared with the catalyst-free test. The prominent activities of Al-ZSM can be attributed to their improved Brϕnsted acid sites (BAS), mesopore surface area (MSA) and basic sites, which resulted from the good synergistic reaction between the Al2O3 and HZSM-5. From the results of this study, the Al-ZSM catalysts demonstrate superior catalytic performances for the rich MEA solvent regeneration process, and show an excellent stability, explicitly have the potential to be a promising industrial catalyst for CO2 capture.
KW - Brϕnsted acid sites
KW - CO2 capture
KW - basic sites
KW - bifunctional catalyst
KW - catalyst-aided CO2 desorption
KW - energy reduction
UR - http://www.scopus.com/inward/record.url?scp=85110217395&partnerID=8YFLogxK
M3 - Paper
AN - SCOPUS:85110217395
T2 - 14th International Conference on Greenhouse Gas Control Technologies, GHGT 2018
Y2 - 21 October 2018 through 25 October 2018
ER -