Packed column modelling and experimental evaluation for CO2 absorption using MDEA solution at high pressure and high CO2 concentrations

被引:11
|
作者
Shahid, Muhammad Zubair [1 ]
Maulud, Abdulhalim Shah [1 ,2 ]
Bustam, M. Azmi [1 ]
Suleman, Humbul [3 ]
Halim, Hairul Nazirah Abdul [4 ]
Shariff, Azmi M. [1 ]
机构
[1] Univ Teknol PETRONAS, Dept Chem Engn, Seri Iskandar 32610, Perak Darul Rid, Malaysia
[2] Univ Teknol PETRONAS, Ctr Contaminant Control & Utilisat CENCOU, Seri Iskandar 32610, Perak Darul Rid, Malaysia
[3] Teesside Univ, Sch Comp Engn & Digital Technol, Middlesbrough TS1 3BX, Cleveland, England
[4] Univ Malaysia Perlis, Fac Chem Engn Technol, Kompleks Pusat Pengajian Jejawi 3, Arau, Perlis, Malaysia
关键词
High-pressure CO2 absorption; CO2 absorption using MDEA solution; Processing of CO2-rich natural gas; Packed column modelling; MASS-TRANSFER PERFORMANCE; AMINE SOLUTIONS MEA; AQUEOUS-SOLUTIONS; NATURAL-GAS; METHYLDIETHANOLAMINE MDEA; DIFFUSION-COEFFICIENTS; DISTILLATION-COLUMNS; STRUCTURED PACKINGS; COMPREHENSIVE MODEL; DIETHANOLAMINE DEA;
D O I
10.1016/j.jngse.2021.103829
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
N-Methyl-diethanolamine (MDEA) is a potential solvent to capture CO2 at high-pressure and high CO2 concentration conditions due to its high CO2-loading capacity and the pressure-driven nature of CO2-MDEA reaction equilibrium. However, no studies have been reported on packed column modelling and experimental evaluation of CO2 absorption process using MDEA solvent for high pressure and high CO2 concentration conditions. Therefore, this study presents the experimental evaluation and modelling of CO2 absorption in the packed column using the MDEA solution at these extreme conditions. The effects of amine concentrations (0.83-3 M), liquid flowrates (3.61-5.42 m(3)/m(2)h) and feed CO2 concentrations (35-45%) have been studied on the CO2 removal efficiency at 40 bar total pressure and 1.8 kg/h gas flowrate. Highest CO2 removal efficiency is found to be 61.7% for 35% CO2 at 5.42 m(3)/m(2)h and 2 M MDEA solution. Further, a rate-based model is developed by accounting for sequential chemical reactions and associated mass transfer resistances occurring at low (<1 molCO(2)/molMDEA) and high CO2 (>1 molCO(2)/molMDEA) loadings. The developed model has been successfully validated with the experimental data. In a parity plot of CO2 concentration profiles along the column height, R-2 is found to be 0.97. Further the model is applied to forecast CO2 absorption performance over the extended process conditions. It is found that 98.2% CO2 removal efficiency can be achieved for 40% CO2 at the conditions of 333.15 K temperature, 4 M MDEA concentration, and 5.42 m(3)/m(2)h liquid flowrates.
引用
收藏
页数:12
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