Kinetic modeling and optimal design of a multi-stage catalytic reactor for methanol synthesis from CO₂-rich syngas
DOI:
https://doi.org/10.31699/IJCPE.2026.3.3Keywords:
Methanol synthesis; CO₂ hydrogenation; multi-stage reactor; Interstage cooling; Vanden Bussche and Froment model; LHHW kinetics; Adiabatic reactor designAbstract
The research establishes an all-inclusive kinetic modeling framework which enables the optimal design of a multi-stage catalytic reactor system dedicated to methanol synthesis from CO2-rich syngas. The simulation makes use of the Vanden Bussche and Froment kinetic model on a Cu/ZnO/Al2O3 catalyst and it uses temperature-dependent adsorption constants which were derived from the van't Hoff equation together with the energy balance calculations that were required for adiabatic reactor operation. The model has been exhaustively validated against published industrial data to validate the physical consistency. The three-stage system achieves 23.7% CO2 conversion with 93.3% methanol selectivity while the single-stage system only reaches 20.5% conversion with 73.0% selectivity according to the comparison between single-stage and multi-stage reactor systems that use interstage cooling. The model simulates the temperature pattern which follows a peak and slight decline in the adiabatic reactor because of the endothermic reverse water-gas shift reaction. The system uses interstage cooling to prevent equilibrium limitations from occurring at high temperatures by controlling this operation. Multi-stage systems deliver their advantages according to the system pressure because interstage cooling reaches its highest efficiency at pressures starting from 70 bar and higher. The analysis shows that pressure and catalyst performance constitute the two main factors that determine methanol production capacity. The best feed temperature for the process is 513 K at 70 bar because it provides the best balance between increased reaction speed and the thermodynamic limits. The research results offer practical design rules which help optimize industrial methanol synthesis reactors that use CO2-rich feedstocks for their operations.
Received on 03/05/2026
Received in Revised Form on 22/07/2026
Accepted on 23/07/2026
Published on 30/09/2026
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