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Enhancing separation efficiency in European syngas industry by using zeolites

Authors :
Sofia Calero
H.N. Akse
José Manuel Vicent-Luna
M.J. Jansman
M.C.M. van de Sanden
Mihalis N. Tsampas
Georgios Zafeiropoulos
Azahara Luna-Triguero
Energy Technology
Center for Computational Energy Research
Materials Simulation & Modelling
Computational Materials Physics
ICMS Business Operations
Applied Physics and Science Education
Plasma & Materials Processing
Molecular Simulation & Modelling
EIRES Systems for Sustainable Heat
EIRES Chem. for Sustainable Energy Systems
Source :
Catalysis Today, 362, 113-121, Catalysis Today, 362, 113-121. Elsevier
Publication Year :
2021
Publisher :
Elsevier, 2021.

Abstract

Syngas is traditionally used in industry for production of fuels in the kerosene, gasoline and diesel range via Fischer-Tropsch, for the manufacture of bulk chemicals like ammonia, methanol and dimethyl ether and for synthesis of a whole array of fine chemicals. The carbon monoxide/hydrogen ratio of the syngas is an important design variable to maximize production of these compounds. Therefore, the search of effective processes that enable said ratio adjustment as well as individual compound purification is an essential and ongoing effort for industry. In this work, we propose a development of a zeolite-based separation process to obtain carbon dioxide-neutral fuels and chemicals. The process designed is based on gas uptake and release, combining separation efficiency with low separation costs. Calculation of separation behavior has been done for mixtures generated by plasmolysis of CO2. Carbon dioxide dissociation into CO and O2 and as a result a mixture of carbon monoxide, oxygen and a residual carbon dioxide is obtained. Therefore, the purification of CO becomes necessary. Here we provide a purification process design based in multicomponent adsorption and separation in commercial available zeolites. The process identifies NaX and NaY as the most suitable zeolites for separation in a wide range of operating conditions.

Details

Language :
English
ISSN :
09205861
Volume :
362
Database :
OpenAIRE
Journal :
Catalysis Today
Accession number :
edsair.doi.dedup.....618ee8abc45773c676e2233de18bf137