Experimental Modeling of CO2 Sorption/Desorption Cycle with MDEA/PZ Blend: Kinetics and Regeneration Temperature

被引:5
作者
Wehrung, Quentin [1 ]
Destefanis, Enrico [1 ]
Caviglia, Caterina [1 ]
Bernasconi, Davide [1 ]
Pastero, Linda [1 ]
Bruno, Marco [1 ]
Bernasconi, Andrea [1 ]
Vernai, Alex Magnetti [2 ]
Di Rienzo, Alice [2 ]
Pavese, Alessandro [1 ]
机构
[1] Univ Turin, Earth Sci Dept, Via Valperga Caluso 35, I-10125 Turin, Italy
[2] Ecospray Technol Srl, Via Circonvallaz,14-14A, I-15050 Alzano Scrivia, Italy
关键词
amine blend; CO2; capture; solvent regeneration; vacuum system; roto-evaporator; CARBON-DIOXIDE; DESORPTION-KINETICS; AMINE SOLUTIONS; MASS-TRANSFER; ABSORPTION; METHYLDIETHANOLAMINE; PIPERAZINE; MONOETHANOLAMINE; CAPTURE; SOLVENT;
D O I
10.3390/su151310334
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
CO2 sorption-desorption cycles with a methyldiethanolamine (MDEA)/piperazine (PZ) blend have been performed with a rotoevaporator. Similar to other CO2 separation technologies, the heating involved in MDEA/PZ solvent regeneration is the most energy-intensive step in the overall CO2 separation process. Thus, this study investigated the desorption kinetics under low-pressure (<200 mbar) and low-temperature conditions in the range from 308 to 363 K with the aim of reducing costs. The CO2 desorption time to unload the samples from similar to 2.35 mol/kg to below the threshold of 1 mol/kg was reduced from 500 s at 333 K to 90 s at 363 K. The Avrami-Erofoyev model was found to fit the experimental kinetic data accurately. The Arrhenius law calculations provided an activation energy of the CO2 desorption process equal to 76.39 kJ/mol. It was demonstrated that the combination of a pressure reduction and the increase in temperature resulted in an enhancement of the desorption kinetics, especially at low temperatures. The combined effect of these two factors resulted in higher desorption kinetics compared to the individual effects of either factor alone. Solvent regeneration at a low temperature was demonstrated to be a valid option when coupled with pressure reduction.
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页数:13
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共 30 条
[1]   Comprehensive evaluation and sensitivity analysis of regeneration energy for acid gas removal plant using single and activated-methyl diethanolamine solvents [J].
Abd, Ammar Ali ;
Naji, Samah Zaki ;
Barifcani, Ahmed .
CHINESE JOURNAL OF CHEMICAL ENGINEERING, 2020, 28 (06) :1684-1693
[2]   Review on CO2 capture by blended amine solutions [J].
Aghel, Babak ;
Janati, Sara ;
Wongwises, Somchai ;
Shadloo, Mostafa Safdari .
INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2022, 119
[3]   Performance of MEA and amine-blends in the CSIRO PCC pilot plant at Loy Yang Power in Australia [J].
Artanto, Yuli ;
Jansen, James ;
Pearson, Pauline ;
Thong Do ;
Cottrell, Aaron ;
Meuleman, Erik ;
Feron, Paul .
FUEL, 2012, 101 :264-275
[4]   Reversible carbon dioxide capture by aqueous and non-aqueous amine-based absorbents: A comparative analysis carried out by 13C NMR spectroscopy [J].
Barzagli, Francesco ;
Giorgi, Claudia ;
Mani, Fabrizio ;
Peruzzini, Maurizio .
APPLIED ENERGY, 2018, 220 :208-219
[5]   Continuous cycles of CO2 absorption and amine regeneration with aqueous alkanolamines: a comparison of the efficiency between pure and blended DEA, MDEA and AMP solutions by 13C NMR spectroscopy [J].
Barzagli, Francesco ;
Mani, Fabrizio ;
Peruzzini, Maurizio .
ENERGY & ENVIRONMENTAL SCIENCE, 2010, 3 (06) :772-779
[6]   Absorption of carbon dioxide into aqueous piperazine: reaction kinetics, mass transfer and solubility [J].
Bishnoi, S ;
Rochelle, GT .
CHEMICAL ENGINEERING SCIENCE, 2000, 55 (22) :5531-5543
[7]   Amine-silica composites for CO2 capture: A short review [J].
Chen, Chao ;
Zhang, Siqian ;
Row, Kyung Ho ;
Ahn, Wha-Seung .
JOURNAL OF ENERGY CHEMISTRY, 2017, 26 (05) :868-880
[8]   MDEA/Piperazine as a solvent for CO2 capture [J].
Closmann, Fred ;
Nguyen, Thu ;
Rochelle, Gary T. .
GREENHOUSE GAS CONTROL TECHNOLOGIES 9, 2009, 1 (01) :1351-1357
[9]   Absorption and desorption rates of carbon dioxide with monoethanolamine and piperazine [J].
Dugas, Ross ;
Rochelle, Gary .
GREENHOUSE GAS CONTROL TECHNOLOGIES 9, 2009, 1 (01) :1163-1169
[10]  
Esmaeili A., 2022, CHEM ENG SCI, P248, DOI [10.1016/j.ces.2021.117118, DOI 10.1016/J.CES.2021.117118]