View : 160 Download: 0

Microkinetic study of syngas conversion to dimethyl ether over a bifunctional catalyst: CZA/FER

Title
Microkinetic study of syngas conversion to dimethyl ether over a bifunctional catalyst: CZA/FER
Authors
ChoJiyeongParkJongminJungHyun SeungBaeJong WookNaJonggeolLeeWon BoMyung-June
Ewha Authors
나종걸
SCOPUS Author ID
나종걸scopus
Issue Date
2023
Journal Title
Korean Journal of Chemical Engineering
ISSN
0256-1115JCR Link
Citation
Korean Journal of Chemical Engineering vol. 40, no. 11, pp. 2632 - 2645
Keywords
C1 ChemistryDimethyl EtherHybrid Bifunctional CatalystKinetic ModelingMicrokinetics
Publisher
Springer
Indexed
SCIE; SCOPUS; KCI scopus
Document Type
Article
Abstract
Dimethyl ether (DME) is an environmentally friendly fuel and economical compound that can be synthesized through methanol (MeOH) dehydration or direct synthesis from syngas via the water-gas shift reaction. Catalysts such as Cu/ZnO/Al2O3 (CZA) for syngas conversion to MeOH and ferrierite (FER), a group of zeolites, or γ-Al2O3 for MeOH dehydration are necessary for these reactions. A hybrid catalyst, CZA/FER, can be used to directly convert syngas into DME via MeOH. While previous studies have developed kinetic models for these catalytic reaction systems using lumped or microkinetic models, differences in describing elementary reactions have led to variations in detail. In this study, we developed a microkinetic model for DME synthesis from syngas via MeOH over a CZA/FER hybrid bifunctional catalyst. We considered detailed reaction rates and site fractions to determine the dominance of DME synthesis path between the associative and dissociative paths. The model is based on a two-site fraction model for each catalyst, with 28 reactions over CZA and nine reactions over FER. Reaction parameters were determined using transition state theory (TST) and the UBI-QEP method for CZA and the second-order Møller-Plesset perturbation theory (MP2) for FER The pre-exponential factors of Arrhenius rate constants were estimated with experimental data at 250 °C which supported the model’s accuracy. Our results show that the associative pathway is dominant for DME synthesis over a CZA/FER hybrid catalyst, which differs from our previous research on microkinetic modeling for MeOH dehydration to DME over an FER zeolite. We also suggest an operating condition range for converting CO2 in the feed. We compared the relative reaction rates of elementary reactions and site fractions in each catalyst to enhance the understanding of the catalytic reaction system. © 2023, The Korean Institute of Chemical Engineers.
DOI
10.1007/s11814-023-1531-y
Appears in Collections:
공과대학 > 화공신소재공학과 > Journal papers
Files in This Item:
There are no files associated with this item.
Export
RIS (EndNote)
XLS (Excel)
XML


qrcode

BROWSE