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Computational Studies on Microreactors for the Decomposition of Formic Acid for Hydrogen Production Using Heterogeneous Catalysts

Authors :
Eleana Harkou
Panayiota Adamou
Kyproula Georgiou
Sanaa Hafeez
Sultan M. Al-Salem
Alberto Villa
George Manos
Nikolaos Dimitratos
Achilleas Constantinou
Source :
Molecules, Vol 28, Iss 14, p 5399 (2023)
Publication Year :
2023
Publisher :
MDPI AG, 2023.

Abstract

Sustainable alternatives to conventional fuels have emerged recently, focusing on a hydrogen-based economy. The idea of using hydrogen (H2) as an energy carrier is very promising due to its zero-emission properties. The present study investigates the formic acid (FA) decomposition for H2 generation using a commercial 5 wt.% Pd/C catalyst. Three different 2D microreactor configurations (packed bed, single membrane, and double membrane) were studied using computational fluid dynamics (CFD). Parameters such as temperature, porosity, concentration, and flow rate of reactant were investigated. The packed bed configuration resulted in high conversions, but due to catalyst poisoning by carbon monoxide (CO), the catalytic activity decreased with time. For the single and double membrane microreactors, the same trends were observed, but the double membrane microreactor showed superior performance compared with the other configurations. Conversions higher than 80% were achieved, and even though deactivation decreased the conversion after 1 h of reaction, the selective removal of CO from the system with the use of membranes lead to an increase in the conversion afterwards. These results prove that the incorporation of membranes in the system for the separation of CO is improving the efficiency of the microreactor.

Details

Language :
English
ISSN :
28145399 and 14203049
Volume :
28
Issue :
14
Database :
Directory of Open Access Journals
Journal :
Molecules
Publication Type :
Academic Journal
Accession number :
edsdoj.6d9766f8fd384f2aa46cb0ac3ebd6aa3
Document Type :
article
Full Text :
https://doi.org/10.3390/molecules28145399