Assessment of the sustainability of intensified CO2 capture schemes

被引:0
|
作者
Coronel-Munoz, Melanie [1 ]
Romero-Garcia, Ana Gabriela [1 ]
Huerta-Rosas, Brenda [1 ]
Sanchez-Ramirez, Eduardo [1 ]
Quiroz-Ramirez, Juan Jose [2 ]
Segovia-Hernandez, Juan Gabriel [1 ]
机构
[1] Univ Guanajuato, Dept Chem Engn, Campus Guanajuato, Guanajuato 36050, Mexico
[2] CIATEC AC Ctr Innovac Aplicada Tecnol Competit, CONACyT, Omega 201 Col Ind Delta, Leon 37545, Mexico
关键词
CO2; capture; Monoethanolamine; Deep eutectic solvent; 2030; agenda; CARBON CAPTURE; INDUSTRY; TECHNOLOGIES; DESIGN; MEA;
D O I
10.1016/j.cep.2025.110222
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The SDGs do address climate-related goals that are interconnected with the need to reduce greenhouse gas emissions. CO2 capture involves the use of solvents such as Monoethanolamine (MEA), whose use, advantages, and disadvantages are well reported. Currently, there are alternative solvents that are theoretically more sustainable such as deep eutectic solvents (DES), however, a direct comparative with sustainable indicators is not always available. In this work, two schemes for the CO2 capture process are evaluated and compared in a sustainable framework. Both schemes capture CO2 from a combustion process to generate electricity. The first scheme considers Monoethanolamine (MEA) and the second scheme considers a DES (ChCl/ urea (1:2), considering in both schemes the use of natural gas, biogas, and coal as fuels that originate the CO2 flux. The evaluation of both alternatives must be approached in a weighted manner and within a framework of sustain- ability. The results indicate that there is no single solution as the optimal solvent for CO2 capture. It was observed that the choice of solvent is predominantly influenced by the type of fuel used in the combustion zone for electricity generation.
引用
收藏
页数:12
相关论文
共 50 条
  • [31] The Effect of CO2 Purity on the Development of Pipeline Networks for Carbon Capture and Storage Schemes
    Wetenhall, B.
    Race, J. M.
    Downie, M. J.
    INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2014, 30 : 197 - 211
  • [32] Modelling and design of a novel calcination reactor integrated with a CO2 capture process for intensified hydrogen production
    Savuto, Elisa
    Stendardo, Stefano
    Di Carlo, Andrea
    FUEL PROCESSING TECHNOLOGY, 2022, 231
  • [33] Modelling and design of a novel calcination reactor integrated with a CO2 capture process for intensified hydrogen production
    Savuto, Elisa
    Stendardo, Stefano
    Di Carlo, Andrea
    Fuel Processing Technology, 2022, 231
  • [34] A dense membrane contactor for intensified CO2 gas/liquid absorption in post-combustion capture
    Nguyen, P. T.
    Lasseuguette, E.
    Medina-Gonzalez, Y.
    Remigy, J. C.
    Roizard, D.
    Favre, E.
    JOURNAL OF MEMBRANE SCIENCE, 2011, 377 (1-2) : 261 - 272
  • [35] Process analysis of intensified absorber for post-combustion CO2 capture through modelling and simulation
    Joel, Atuman S.
    Wang, Meihong
    Ramshaw, Colin
    Oko, Eni
    INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2014, 21 : 91 - 100
  • [36] Intensified CO2 capture in wall-coated microreactors with immobilized carbonic anhydrase: Experimental and modeling
    Iliuta, Ion
    Rasouli, Hannaneh
    Iliuta, Maria C.
    SEPARATION AND PURIFICATION TECHNOLOGY, 2023, 307
  • [37] CO2 Capture and Sequestration
    Das, Diganta Bhusan
    CLEAN TECHNOLOGIES, 2024, 6 (02): : 494 - 496
  • [38] CO2 Capture Technology
    Noborisato T.
    Yosetsu Gakkai Shi/Journal of the Japan Welding Society, 2022, 91 (06): : 75 - 80
  • [39] Coupling electrochemical CO2 conversion with CO2 capture
    Ian Sullivan
    Andrey Goryachev
    Ibadillah A. Digdaya
    Xueqian Li
    Harry A. Atwater
    David A. Vermaas
    Chengxiang Xiang
    Nature Catalysis, 2021, 4 : 952 - 958
  • [40] Coupling electrochemical CO2 conversion with CO2 capture
    Sullivan, Ian
    Goryachev, Andrey
    Digdaya, Ibadillah A.
    Li, Xueqian
    Atwater, Harry A.
    Vermaas, David A.
    Xiang, Chengxiang
    NATURE CATALYSIS, 2021, 4 (11) : 952 - 958