Automated MUltiscale simulation environment

Author

Sabadell-Rendon, Albert

Kaźmierczak, Kamila

Morandi, Santiago

Euzenat, Florian

Curulla-Ferré, Daniel

López, Núria

Publication date

2023-11-07



Abstract

Multiscale techniques integrating detailed atomistic information on materials and reactions to predict the performance of heterogeneous catalytic full-scale reactors have been suggested but lack seamless implementation. The largest challenges in the multiscale modeling of reactors can be grouped into two main categories: catalytic complexity and the difference between time and length scales of chemical and transport phenomena. Here we introduce the Automated MUltiscale Simulation Environment AMUSE, a workflow that starts from Density Functional Theory (DFT) data, automates the analysis of the reaction networks through graph theory, prepares it for microkinetic modeling, and subsequently integrates the results into a standard open-source Computational Fluid Dynamics (CFD) code. We demonstrate the capabilities of AMUSE by applying it to the unimolecular iso-propanol dehydrogenation reaction and then, increasing the complexity, to the pre-commercial Pd/In2O3 catalyst employed for the CO2 hydrogenation to methanol. The results show that AMUSE allows the computational investigation of heterogeneous catalytic reactions in a comprehensive way, providing essential information for catalyst design from the atomistic to the reactor scale level.

Document Type

Article
Published version

Language

English

CDU Subject

00 - Prolegomena. Fundamentals of knowledge and culture. Propaedeutics

Subject

Química

Pages

12 p.

Publisher

Royal Society of Chemistry

Grant Agreement Number

TotalEnergies (contract reference CT00001052)

Spanish Ministry of Science and Innovation for funding (reference PID2021-122516OB-I00)

This publication was created as part of NCCR Catalysis (grant number 180544), a National Centre of Competence in Research funded by the Swiss National Science Foundation

Documents

d3dd00163f.pdf

1.932Mb

 

Rights

CC BY 3.0 DEED

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