Simulation of Aqueous Blend of Monoethanolamine and Glycerol for Carbon Dioxide Capture from Flue Gas

被引:14
作者
Mirzaei, Somayeh [1 ]
Shamiri, Ahmad [2 ,3 ]
Aroua, Mohamed Kheireddine [1 ]
机构
[1] Univ Malaya, Chem Engn Dept, Fac Engn, Kuala Lumpur 50603, Malaysia
[2] UCSI Univ, Chem & Petr Engn Dept, Fac Engn Technol & Built Environm, Kuala Lumpur 56000, Malaysia
[3] UCSI Univ, Proc Syst Engn Ctr, Fac Engn Technol & Built Environm, Kuala Lumpur 56000, Malaysia
关键词
VAPOR-LIQUID-EQUILIBRIA; RATE-BASED MODEL; CO2; CAPTURE; MASS-TRANSFER; PACKED-COLUMN; N-METHYLDIETHANOLAMINE; ALKANOLAMINE SYSTEMS; PHYSICAL-PROPERTIES; ABSORPTION; MIXTURES;
D O I
10.1021/acs.energyfuels.6b01230
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
This study investigated CO2 capture from flue gas by using glycerol as solvent. Absorption was simulated using a rate-based model with three cases under similar operating conditions. CO2 separation was first simulated using ENRTL-RK thermodynamic model with monoethanolamine (MEA) as. solvent. CO2 absorption was then simulated using NRTL-RK thermodynamic model with glycerol solvent, and then an aqueous mixture of MEA/glycerol was also simulated using ENRTL-RK thermodynamic model. Simulation results confirm that glycerol can be used as promoter with MEA solvent to enhance CO2 capture. The optimal glycerol concentration for CO2 absorption is 10-40 wt %, in which 10 wt % glycerol exhibits the lowest CO2 concentration in the outlet gas from the absorber. The CO2 removal efficiency increases from 62.24% for 10 wt % MEA aqueous solution to 64.33% for the mixture of 10 wt % MEA-10 wt % glycerol aqueous solution. The CO2 removal efficiency for 10 wt % glycerol aqueous solution is 27.31%.
引用
收藏
页码:9540 / 9553
页数:14
相关论文
共 50 条
[41]   Multi-bed Vacuum Pressure Swing Adsorption for carbon dioxide capture from flue gas [J].
Liu, Zhen ;
Grande, Carlos A. ;
Li, Ping ;
Yu, Jianguo ;
Rodrigues, Alirio E. .
SEPARATION AND PURIFICATION TECHNOLOGY, 2011, 81 (03) :307-317
[42]   Carbon Dioxide Capture from Flue Gas Using Tri-Sodium Phosphate as an Effective Sorbent [J].
Sakpal, Tushar ;
Kumar, Asheesh ;
Aman, Zachary M. ;
Kumar, Rajnish .
ENERGIES, 2019, 12 (15)
[43]   Dynamic Modeling and Control of the Carbon Dioxide Capture Process Using Monoethanolamine Solvent [J].
Chen, Yih-Hang ;
Shen, Ming-Tien ;
Chang, Hsuan .
JOURNAL OF APPLIED SCIENCE AND ENGINEERING, 2019, 22 (03) :521-530
[44]   Review on Membrane Technologies for Carbon Dioxide Capture from Power Plant Flue Gas [J].
Lv, Yuexia ;
Yan, Guihuan ;
Xu, Chongqing ;
Xu, Min ;
Sun, Liang .
PROGRESS IN MATERIALS AND PROCESSES, PTS 1-3, 2013, 602-604 :1140-1144
[45]   Carbon dioxide capture with concentrated, aqueous piperazine [J].
Freeman, Stephanie A. ;
Dugas, Ross ;
Van Wagener, David H. ;
Nguyen, Thu ;
Rochelle, Gary T. .
INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2010, 4 (02) :119-124
[46]   Carbon dioxide capture by the green aqueous sodium hydroxide-glycerol solution in a gas-liquid microchannel contactor [J].
Valeh-e-Sheyda, Peyvand ;
Nafchi, Nastaran Fattahi .
JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2022, 10 (06)
[47]   Simulation and comprehensive technical, economic, and environmental assessments of carbon dioxide capture for methanol production through flue gas of a combined cycle power plant [J].
Qi, Hao ;
Wu, Xuewen ;
Huan, Hehuan .
INTERNATIONAL JOURNAL OF ENERGY AND ENVIRONMENTAL ENGINEERING, 2023, 14 (03) :405-429
[48]   Carbon dioxide desorption from aqueous solutions of monoethanolamine and diethanolamine in a microchannel reactor [J].
Aghel, Babak ;
Sahraie, Sasan ;
Heidaryan, Ehsan .
SEPARATION AND PURIFICATION TECHNOLOGY, 2020, 237
[49]   Mass transfer and kinetics of carbon dioxide absorption into loaded aqueous monoethanolamine solutions [J].
Luo, Xiao ;
Hartono, Ardi ;
Hussain, Saddam ;
Svendsen, Hallvard F. .
CHEMICAL ENGINEERING SCIENCE, 2015, 123 :57-69
[50]   Carbon Dioxide Removal from Flue Gases by Absorption/Desorption in Aqueous Diethanolamine Solutions [J].
Kierzkowska-Pawlak, Hanna ;
Chacuk, Andrzej .
JOURNAL OF THE AIR & WASTE MANAGEMENT ASSOCIATION, 2010, 60 (08) :925-931