Thermodynamics of Dimethyl Carbonate and Ethylene Carbonate Generation During the Conversion of Syngas to Ethylene Glycol

Author:

Song Can12,Zhao Lihong2,Yan Jie2,Liang Xu2,Liu Guoji1,Jiang Yuanli12ORCID

Affiliation:

1. School of Chemical Engineering Zhengzhou University Zhengzhou 450002 China

2. Research Institute of Henan Energy Group Co. Ltd. Zhengzhou 450046 China

Abstract

AbstractDespite recent progress in the coal‐to‐ethylene glycol (EG) technology, some indicators show that the obtained products are still different from those produced by the petroleum route method. Therefore, it is of great significance to improve the thermodynamic performance of the system to obtain an enhanced process technology. In this paper, thermodynamic data related to uncommon substances in coal‐to‐EG reactions were estimated using the Benson group contribution method, and the values of the reaction enthalpy, Gibbs free energy, and the equilibrium constant of each reaction in the system were calculated. We systematically analyzed the temperature influence on the main product, DMO (dimethyl oxalate), and the main by‐product, DMC (dimethyl carbonate), in the DMO synthesis reaction and the influence of the DMC content on the spontaneous formation of EC (ethylene carbonate) in the DMO hydrogenation reaction. The obtained results demonstrated that elevated temperatures are favorable for the generation of DMC. In the DMO hydrogenation reaction, the mass fraction of DMC should be less than 0.05678 % when the feeding proportion is based on industrial data. When pure DMO is fed, the mass fraction of DMC should be less than 0.0335 %. Finally, no special treatment is required for EC separation in these cases.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

General Chemistry

Reference21 articles.

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2. T. Susumu F. Kozo N. Keigo M. Masaoki M Katsuhiko (UBE Industries Ltd.) US 04453026 A 1984.

3. Reaction mechanism of methyl nitrite dissociation during co catalytic coupling to dimethyl oxalate: A density functional theory study

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