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Mechanistic kinetic modeling for catalytic conversion of DME to gasoline-range hydrocarbons over nanostructured ZSM-5
  • Lee, Damin ;
  • Kim, Jong Jin ;
  • Ali, Mansoor ;
  • Choung, Jin Woo ;
  • Lee, Won Bo ;
  • Bae, Jong Wook ;
  • Park, Myung June
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Publication Year
2022-06-13
Publisher
Royal Society of Chemistry
Citation
Catalysis Science and Technology, Vol.12, pp.4798-4810
Mesh Keyword
Catalytic conversionDeveloped modelGasoline-range hydrocarbonsKinetic modelsKinetics parameterMechanistic kinetic modelsMethoxyNano-structuredReaction mechanismZSM-5 catalysts
All Science Classification Codes (ASJC)
Catalysis
Abstract
A new kinetic model for the synthesis of gasoline-range hydrocarbons from dimethyl ether over a nanostructured ZSM-5 catalyst was developed based on the dual-cycle reaction mechanism. The production of individual olefin species was described by two independent cycles (olefinic and aromatic), and the model included surface methoxy as an intermediate in the heterogeneous reaction processes. Kinetic parameters for the model were estimated by fitting the experimental data under various conditions in the temperature range of 513-533 K, a space velocity of 2200-10 000 L kgcat−1 h−1, and a pressure of 1-5 bar, using the genetic algorithm. The developed model described the experimental results with a relative error below 15%, and the estimated kinetic parameters explained the governing behaviors of the reaction. The activation energies of olefinic methylation decreased with increasing chain length, and ethylene was more selectively produced by aromatic cracking, while the olefinic cycle was the main contributor for the production of propylene, in comparison with the aromatic cycle. With the developed model, the dependence of product selectivity on the operating conditions (temperature and pressure) and the evolution of product yields for each species in the reactor could be predicted accurately and precisely.
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/32774
DOI
https://doi.org/10.1039/d2cy00616b
Fulltext

Type
Article
Funding
This research was supported by the National Research Foundation of Korea (NRF), funded by the Ministry of Science and ICT of the Republic of Korea (NRF-2021M1A2A2037010 and NRF-2018M3D3A1A01018009).
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Park, Myung-June Image
Park, Myung-June박명준
Department of Chemical Engineering
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