Development of an Improved Kinetic Model for CO2 Hydrogenation to Methanol

Author:

Mbatha Siphesihle12,Thomas Sébastien3,Parkhomenko Ksenia3,Roger Anne-Cécile3ORCID,Louis Benoit3,Cui Xiaoti4,Everson Ray2,Langmi Henrietta5ORCID,Musyoka Nicholas1ORCID,Ren Jianwei6ORCID

Affiliation:

1. HySA Infrastructure Center of Competence, Center for Nanostructures and Advanced Materials (CeNAM), Chemicals Cluster, Council for Scientific and Industrial Research (CSIR), Pretoria 0001, South Africa

2. Center of Excellence in Carbon Based Fuels, School of Chemical and Minerals Engineering, Faculty of Engineering, North-West University, Private Bag X6001, Potchefstroom 2531, South Africa

3. Institute of Chemistry and Processes for Energy, Environment and Health (ICPEES), UMR 7515 CNRS-University of Strasbourg, 25 Rue Becquerel, CEDEX 02, 67087 Strasbourg, France

4. Department of Energy, Aalborg University, Pontoppidanstr. 111, 9220 Aalborg, Denmark

5. Department of Chemistry, University of Pretoria, Private Bag X20, Hatfield 0028, South Africa

6. Department of Mechanical Engineering Science, University of Johannesburg, Cnr Kingsway and University Roads, Auckland Park, Johannesburg 2092, South Africa

Abstract

The kinetics of methanol synthesis remains debatable for various reasons, such as the lack of scientifically conclusive agreement about reaction mechanisms. The focus of this paper is on the evaluation of the intrinsic kinetics of the methanol synthesis reaction based on CO2 hydrogenation and the associated reverse water–gas shift as overall reactions. The industrial methanol synthesis catalyst, Cu/ZnO/Al2O3/MgO, was used for performing the kinetic studies. An optimal kinetic model was assessed for its ability to predict the experimental data from differential to integral conditions, contrary to the typical fitting of only the integral conditions’ data (common practice, as reported in the literature). The catalyst testing and kinetic evaluations were performed at various temperatures (210–260 °C) and pressures (40–77 bar), and for different stoichiometric numbers (0.9–1.9), H2/CO2 ratios (3.0–4.4) and carbon oxide ratios (0.9–1.0), in an isothermal fixed bed reactor, operated in a plug-flow mode. Experiments with CO in the feed were also generated and fitted. Different literature kinetic models with different assumptions on active sites, rate-determining steps, and hence, model formulations were fitted and compared. The original Seidel model appeared to fit the kinetic data very well, but it has twelve parameters. The modified model (MOD) we propose is derived from this Seidel model, but it has fewer (nine) parameters—it excludes CO hydrogenation, but it takes into consideration the morphological changes of active sites and CO adsorption. This MOD model, with three active sites, gave the best fit to all the data sets.

Publisher

MDPI AG

Subject

Physical and Theoretical Chemistry,Catalysis,General Environmental Science

Reference46 articles.

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2. Understanding catalytic CO2 and CO conversion into methanol using computational fluid dynamics;Kyrimis;Faraday Discuss.,2021

3. Prakash, G.K.S., Olah, G., and Goeppert, A. (2018). Beyond Oil and Gas: The Methanol Economy, John Wiley & Sons. [3rd Updated and Enlarged ed.].

4. Peter, M. (2012). Mechanistic Modeling of Reaction Kinetics and Dynamic Changes in Catalyst Morphology on a Mesoscopic scale. [Ph.D. Thesis, Technische Universität München]. Available online: http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:91-diss-20120712-1095829-1-3.

5. In Situ Quantification of Reaction Adsorbates in Low-Temperature Methanol Synthesis on a High-Performance Cu/ZnO:Al Catalyst;Tarasov;ACS Catal.,2019

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