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Rate‐Based Modeling of CO 2 Absorption into Piperazine‐Activated Aqueous N ‐Methyldiethanolamine Solution: Kinetic and Mass Transfer Analysis
Author(s) -
Saidi Majid
Publication year - 2017
Publication title -
international journal of chemical kinetics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.341
H-Index - 68
eISSN - 1097-4601
pISSN - 0538-8066
DOI - 10.1002/kin.21108
Subject(s) - chemistry , diethanolamine , piperazine , mass transfer , aqueous solution , mass transfer coefficient , absorption (acoustics) , partial pressure , alkanolamine , amine gas treating , solvent , analytical chemistry (journal) , chromatography , organic chemistry , materials science , oxygen , composite material
A comprehensive two‐dimensional mathematical model based on surface renewal theory has been developed to analyze the CO 2 absorption into piperazine (PZ)‐activated aqueous N ‐methyldiethanolamine (MDEA) solvent by taking into account the structured packed bed column hydraulics, mass transfer resistances, and chemical reactions. The modeling results have been validated with the experimental data reported in the literature, and they have been found to be in good agreement with the experimental results. The effects of amine concentration, liquid temperature, initial CO 2 partial pressure, liquid flow rate, and CO 2 loading on the mass transfer performance have been evaluated in terms of overall mass transfer coefficient ( K G a v ). The overall mass transfer coefficient and absorption flux of CO 2 into aqueous MDEA+PZ blended solution have been calculated over the CO 2 partial pressure range of 4–16 kPa, temperature range of 298–333 K, and solvent concentration of 1–3 M. To evaluate the performance of different solvents on separation process, some common industrial chemical absorbents including monoethanolamine (MEA), diethanolamine (DEA), triethylamine (TEA), MDEA and PZ were compared with a MDEA+PZ blended solution. The results indicate that CO 2 absorption reaction with PZ is faster than that with MDEA, but also adding small amounts of PZ as a promoter to MDEA solvents improves significantly the absorption rate. The results show that CO 2 absorption reaction with the MDEA+PZ blended solution is faster than that with TEA and MDEA, also comparable with DEA, but slower than those with MEA and PZ. The modeling results illustrate that the K G a v enhances with increasing the solvent concentration, liquid temperature, and liquid flow rate, but reduces with increasing the CO 2 loading and initial CO 2 partial pressure. In addition, the reaction kinetics in terms of enhancement factor was found to decrease as the CO 2 loading enhances and increase as the operating temperature rises.

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