[1] W.M. Budzianowski, Explorative analysis of advanced solvent processes for energy efficient carbon dioxide capture by gas-liquid absorption, Int. J. Greenh. Gas Control 49(2016) 108-120. [2] G. Manzolin, E. Macchi, M. Binotti, Integration of SEWGS for carbon capture in natural gas combined cycle. Part A:Thermodynamic performances, Int. J. Greenh. Gas Control 5(2) (2011) 200-213. [3] G.T. Rochelle, Amine scrubbing for CO2 capture, Science 25(2009) 1652-1654. [4] X.M. Wu, Y.S. Yu, C.Y. Zhang, G.X. Wang, B. Feng, Identifying the CO2 capture performance of CaCl2-supported amine adsorbent by the improved field synergy theory, Ind. Eng. Chem. Res. 53(24) (2014) 10225-10237. [5] Y.S. Yu, Y. Li, H.F. Lu, Z.X. Zhang, Synergy pinch analysis of CO2 desorption process, Ind. Eng. Chem. Res. 50(24) (2011) 13997-14007. [6] B.Y. Li, Y.H. Duan, D. Luebke, Advances in CO2 capture technology:A patent review, Appl. Energy 102(2013) 1439-1447. [7] M. Wang, A.S. Joel, C. Ramshaw, Process intensification for post-combustion CO2 capture with chemical absorption:A critical review, Appl. Energy 158(2015) 275-291. [8] P. Brown, B.E. Gurkan, T.A. Hatton, Enhanced gravimetric CO2 capacity and viscosity for ionic liquids with cyanopyrrolide anion, AIChE J. 61(7) (2015) 2280-2285. [9] Y.S. Yu, Y. Li, H.F. Lu, Z.X. Zhang, Multi-field synergy study of CO2 capture process by chemical absorption, Chem. Eng. Sci. 65(10) (2010) 3279-3292. [10] K.H. Javed, T. Mahmud, E. Purba, The CO2 capture performance of a high-intensity vortex spray scrubber, Chem. Eng. J. 162(2) (2010) 448-456. [11] J. Kuntz, A. Aroonwilas, Performance of spray column for CO2 capture application, Ind. Eng. Chem. Res. 47(1) (2008) 145-153. [12] J. Kuntz, A. Aroonwilas, Mass-transfer efficiency of a spray column for CO2 capture by MEA, Energy Procedia 1(1) (2009) 205-209. [13] Z.Q. Niu, Y.C. Guo, W.Y. Lin, Experimental study on absorption of carbon dioxide in flue gas by monoethanolamine fine spray, Proc. Chin. Soc. Electr. Eng. 32(2010) 41-45. [14] Z.Q. Niu, Y.C. Guo, W.Y. Lin, Carbon dioxide removal efficiencies by fine sprays of MEA, NaOH and aqueous ammonia solution, J. Tsinghua Univ. 07(2010) 1130-1134. [15] Z.Q. Niu, Y.C. Guo, W.Y. Lin, Comparison of capture efficiencies of carbon dioxide by fine spray of aqueous ammonia and MEA solution, Chem. J. Chin. Univ. 03(2010) 514-517. [16] Y. Lim, M. Choi, K. Han, Performance characteristics of CO2 capture using aqueous ammonia in a single-nozzle spray tower, Ind. Eng. Chem. Res. 52(43) (2013) 15131-15137. [17] K. Maneeintr, R.O. Idem, P. Tontiwachwuthikul, Comparative mass transfer performance studies of CO2 absorption into aqueous solutions of DEAB and MEA, Ind. Eng. Chem. Res. 49(6) (2010) 2857-2863. [18] A. Aroonwilas, P. Tontiwachwuthikul, Mass transfer coefficients and correlation for CO2 absorption into 2-amino-2-methyl-1-propanol (AMP) using structured packing, Ind. Eng. Chem. Res. 37(2) (1998) 569-575. [19] A. Aroonwilas, A. Veawab, Characterization and comparison of the CO2 absorption performance into single and blended alkanolamines in a packed column, Ind. Eng. Chem. Res. 43(9) (2004) 2228-2237. [20] A. Naami, M. Edali, T. Sema, R. Idem, P. Tontiwachwuthikul, Mass transfer performance of CO2 absorption into aqueous solutions of 4-diethylamino-2-butanol, monoethanolamine, and N-methyldiethanolamine, Ind. Eng. Chem. Res. 51(18) (2012) 6470-6479. [21] K. Fu, T. Sema, Z. Liang, Investigation of mass-transfer performance for CO2 absorption into diethylenetriamine (DETA) in a randomly packed column, Ind. Eng. Chem. Res. 51(37) (2012) 12058-12064. [22] G. Astaria, D.W. Savage, A. Bisio, Gas treating with chemical solvents, John Wiley, USA, 1983. [23] A. Benamor, M.K. Aroua, Modeling of CO2 solubility and carbamate concentration in DEA, MDEA and their mixtures using the Deshmukh-Mather model, Fluid Phase Equilib. 231(2) (2005) 150-162. |