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Decarbonization of Power and Industrial Sectors: The Role of Membrane Processes

Carbon dioxide (CO(2)) is the single largest contributor to climate change due to its increased emissions since global industrialization began. Carbon Capture, Storage, and Utilization (CCSU) is regarded as a promising strategy to mitigate climate change, reducing the atmospheric concentration of CO...

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Autores principales: Kamolov, Azizbek, Turakulov, Zafar, Rejabov, Sarvar, Díaz-Sainz, Guillermo, Gómez-Coma, Lucia, Norkobilov, Adham, Fallanza, Marcos, Irabien, Angel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9964316/
https://www.ncbi.nlm.nih.gov/pubmed/36837633
http://dx.doi.org/10.3390/membranes13020130
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author Kamolov, Azizbek
Turakulov, Zafar
Rejabov, Sarvar
Díaz-Sainz, Guillermo
Gómez-Coma, Lucia
Norkobilov, Adham
Fallanza, Marcos
Irabien, Angel
author_facet Kamolov, Azizbek
Turakulov, Zafar
Rejabov, Sarvar
Díaz-Sainz, Guillermo
Gómez-Coma, Lucia
Norkobilov, Adham
Fallanza, Marcos
Irabien, Angel
author_sort Kamolov, Azizbek
collection PubMed
description Carbon dioxide (CO(2)) is the single largest contributor to climate change due to its increased emissions since global industrialization began. Carbon Capture, Storage, and Utilization (CCSU) is regarded as a promising strategy to mitigate climate change, reducing the atmospheric concentration of CO(2) from power and industrial activities. Post-combustion carbon capture (PCC) is necessary to implement CCSU into existing facilities without changing the combustion block. In this study, the recent research on various PCC technologies is discussed, along with the membrane technology for PCC, emphasizing the different types of membranes and their gas separation performances. Additionally, an overall comparison of membrane separation technology with respect to other PCC methods is implemented based on six different key parameters—CO(2) purity and recovery, technological maturity, scalability, environmental concerns, and capital and operational expenditures. In general, membrane separation is found to be the most competitive technique in conventional absorption as long as the highly-performed membrane materials and the technology itself reach the full commercialization stage. Recent updates on the main characteristics of different flue gas streams and the Technology Readiness Levels (TRL) of each PCC technology are also provided with a brief discussion of their latest progresses.
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spelling pubmed-99643162023-02-26 Decarbonization of Power and Industrial Sectors: The Role of Membrane Processes Kamolov, Azizbek Turakulov, Zafar Rejabov, Sarvar Díaz-Sainz, Guillermo Gómez-Coma, Lucia Norkobilov, Adham Fallanza, Marcos Irabien, Angel Membranes (Basel) Review Carbon dioxide (CO(2)) is the single largest contributor to climate change due to its increased emissions since global industrialization began. Carbon Capture, Storage, and Utilization (CCSU) is regarded as a promising strategy to mitigate climate change, reducing the atmospheric concentration of CO(2) from power and industrial activities. Post-combustion carbon capture (PCC) is necessary to implement CCSU into existing facilities without changing the combustion block. In this study, the recent research on various PCC technologies is discussed, along with the membrane technology for PCC, emphasizing the different types of membranes and their gas separation performances. Additionally, an overall comparison of membrane separation technology with respect to other PCC methods is implemented based on six different key parameters—CO(2) purity and recovery, technological maturity, scalability, environmental concerns, and capital and operational expenditures. In general, membrane separation is found to be the most competitive technique in conventional absorption as long as the highly-performed membrane materials and the technology itself reach the full commercialization stage. Recent updates on the main characteristics of different flue gas streams and the Technology Readiness Levels (TRL) of each PCC technology are also provided with a brief discussion of their latest progresses. MDPI 2023-01-19 /pmc/articles/PMC9964316/ /pubmed/36837633 http://dx.doi.org/10.3390/membranes13020130 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Kamolov, Azizbek
Turakulov, Zafar
Rejabov, Sarvar
Díaz-Sainz, Guillermo
Gómez-Coma, Lucia
Norkobilov, Adham
Fallanza, Marcos
Irabien, Angel
Decarbonization of Power and Industrial Sectors: The Role of Membrane Processes
title Decarbonization of Power and Industrial Sectors: The Role of Membrane Processes
title_full Decarbonization of Power and Industrial Sectors: The Role of Membrane Processes
title_fullStr Decarbonization of Power and Industrial Sectors: The Role of Membrane Processes
title_full_unstemmed Decarbonization of Power and Industrial Sectors: The Role of Membrane Processes
title_short Decarbonization of Power and Industrial Sectors: The Role of Membrane Processes
title_sort decarbonization of power and industrial sectors: the role of membrane processes
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9964316/
https://www.ncbi.nlm.nih.gov/pubmed/36837633
http://dx.doi.org/10.3390/membranes13020130
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