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  4. Recent progress in calcium looping integrated with chemical looping combustion (CaL-CLC) using bifunctional CaO/CuO composites for CO2 capture: A state-of-the-art review
 
review article

Recent progress in calcium looping integrated with chemical looping combustion (CaL-CLC) using bifunctional CaO/CuO composites for CO2 capture: A state-of-the-art review

Chen, Jian
•
Duan, Lunbo
•
Ma, Yuxin
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February 15, 2023
Fuel

Calcium looping integrated with chemical looping combustion (CaL-CLC) process is an efficient and cost-effective CO2 capture technology. In this technique, the heat generated by chemical looping combustion of CuO is used insitu to calcine CaCO3, thus avoiding the implementation of the energy-intensive air separation unit (ASU) in the conventional calcium looping (CaL) process for postcombustion CO2 capture. Many studies, including simulation works and material development, have been carried out on the CaL-CLC process. It is thus imperative to present the recent progress in the CaL-CLC process whilst providing a research prospects framework and direction for future research. First, fundamental understandings of the CaL-CLC process are discussed, including its concept and potential applications. Then, simulation work is reviewed, emphasizing process design and analysis, as well as modeling of the reactor and main reactions involved in the CaL-CLC process. Due to the fast reactivity decay of bifunctional CaO/CuO composites, various strategies have been developed to overcome this issue, which are summarized in detail. Last, future research directions for the CaL-CLC process are proposed.

  • Details
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Type
review article
DOI
10.1016/j.fuel.2022.126630
Web of Science ID

WOS:000997407100001

Author(s)
Chen, Jian
Duan, Lunbo
Ma, Yuxin
Jiang, Yuxin
Huang, Anqi
Zhu, Hongyu
Jiao, Hongyu
Li, Mingdi
Hu, Yanbin
Zhou, Hui
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Date Issued

2023-02-15

Publisher

ELSEVIER SCI LTD

Published in
Fuel
Volume

334

Article Number

126630

Subjects

Energy & Fuels

•

Engineering, Chemical

•

Engineering

•

calcium looping

•

chemical looping combustion

•

co 2 capture

•

composite

•

simulation

•

carbon-dioxide capture

•

fixed-bed reactor

•

hydrogen-production process

•

oxy-fuel combustion

•

natural-gas

•

h-2 production

•

combined-cycle

•

power-plants

•

cu process

•

technoeconomic analysis

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
GR-KRO  
Available on Infoscience
June 19, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/198471
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