CATALYTIC OXIDATIVE COUPLING OF METHANE - REACTION-ENGINEERING ASPECTS AND PROCESS SCHEMES

Citation
L. Mleczko et M. Baerns, CATALYTIC OXIDATIVE COUPLING OF METHANE - REACTION-ENGINEERING ASPECTS AND PROCESS SCHEMES, Fuel processing technology, 42(2-3), 1995, pp. 217-248
Citations number
121
Categorie Soggetti
Engineering, Chemical","Energy & Fuels","Chemistry Applied
Journal title
ISSN journal
03783820
Volume
42
Issue
2-3
Year of publication
1995
Pages
217 - 248
Database
ISI
SICI code
0378-3820(1995)42:2-3<217:COCOM->2.0.ZU;2-V
Abstract
Catalytic oxidative coupling of methane to higher hydrocarbons (OCM) h as attracted widespread attention as a potential route to ethylene or liquid fuels. Besides tremendous research work in catalyst development , a lot of investigations dealt with reaction engineering aspects in o rder to make this process technically feasible, The objective of the p aper is to evaluate the current status in this field. Various aspects as reaction kinetics, reactor selection and different modes of reactor operation are analysed with the aim to identify reaction engineering means which can be used to maximize C-2+ selectivity and yield. Partic ularly, available kinetic models for reaction engineering applications are revised and the importance of various reaction steps, also pre- a nd postcatalytic reactions is analysed. Since OCM is a complex reactio n network of parallel and consecutive, heterogeneous as well as homoge neous reaction steps the selectivity to C-2+ hydrocarbons strongly dep ends on the reaction conditions; in the paper the effect of temperatur e, partial pressures of methane and oxygen, and total pressure is disc ussed. Central issue in development of the OCM process is the choice o f the type of reactor. Possible designs of fixed-bed and fluidized-bed reactors, the status in their modelling for OCM, best C-2+ yields ach ieved in lab-scale units as well as novel reactor designs are reviewed . Furthermore, the possibility to improve catalytic performance by app lying distributed feed of oxygen or secondary feed of ethane is discus sed. Finally a general scheme of the OCM process which includes variou s options proposed in the literature is presented.