TY - JOUR
T1 - Comprehensive mass transfer and reaction kinetics studies of CO2 absorption into aqueous solutions of blended MDEA-MEA
AU - Sema, Teerawat
AU - Naami, Abdulaziz
AU - Fu, Kaiyun
AU - Edali, Mohamed
AU - Liu, Helei
AU - Shi, Huancong
AU - Liang, Zhiwu
AU - Idem, Raphael
AU - Tontiwachwuthikul, Paitoon
PY - 2012/10/5
Y1 - 2012/10/5
N2 - In the present work, the reaction kinetics and mass transfer performance of CO2 absorption into aqueous solutions of blended MDEA-MEA solutions were comprehensively studied. The reaction kinetics was investigated using a laminar jet absorber in terms of a second order reaction rate constant and enhancement factor. The mass transfer performance was evaluated experimentally in a lab-scale absorber packed with high efficiency DX structured packing in terms of CO2 concentration profile and over all mass transfer coefficient (KGav). The experiments were conducted over the MDEA/MEA concentrations of 27/3, 25/5, and 23/7wt% MDEA/wt% MEA (which equivalent to MDEA-MEA molar ratios of 2.3/0.5, 2.1/0.8, and 1.95/1.16M, respectively). It was found that kMEA was successfully extracted and can be expressed as: k MEA = (5.127 × 108)exp -3373.8T. The results also show that the operating parameters (i.e., MDEA-MEA blended ratio, temperature, and CO2 loading) affect both the reaction kinetics and mass transfer performance significantly. Lastly, the MDEA-MEA blended ratio of 1.95/1.16 provided the highest reaction kinetics and mass transfer performance among the three concentrations investigated in this study.
AB - In the present work, the reaction kinetics and mass transfer performance of CO2 absorption into aqueous solutions of blended MDEA-MEA solutions were comprehensively studied. The reaction kinetics was investigated using a laminar jet absorber in terms of a second order reaction rate constant and enhancement factor. The mass transfer performance was evaluated experimentally in a lab-scale absorber packed with high efficiency DX structured packing in terms of CO2 concentration profile and over all mass transfer coefficient (KGav). The experiments were conducted over the MDEA/MEA concentrations of 27/3, 25/5, and 23/7wt% MDEA/wt% MEA (which equivalent to MDEA-MEA molar ratios of 2.3/0.5, 2.1/0.8, and 1.95/1.16M, respectively). It was found that kMEA was successfully extracted and can be expressed as: k MEA = (5.127 × 108)exp -3373.8T. The results also show that the operating parameters (i.e., MDEA-MEA blended ratio, temperature, and CO2 loading) affect both the reaction kinetics and mass transfer performance significantly. Lastly, the MDEA-MEA blended ratio of 1.95/1.16 provided the highest reaction kinetics and mass transfer performance among the three concentrations investigated in this study.
KW - CO absorption
KW - Mass transfer coefficient
KW - Packed column
KW - Rate constant
KW - Reaction kinetics
UR - http://www.scopus.com/inward/record.url?scp=84865845788&partnerID=8YFLogxK
U2 - 10.1016/j.cej.2012.08.016
DO - 10.1016/j.cej.2012.08.016
M3 - Article
AN - SCOPUS:84865845788
SN - 1385-8947
VL - 209
SP - 501
EP - 512
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
ER -