Structured reactors based on 3D Fe/SiC Catalysts: understanding the effects of mixing
Entity
UAM. Departamento de Ingeniería QuímicaPublisher
American Chemical SocietyDate
2022-08-08Citation
10.1021/acs.iecr.2c01611
Industrial & Engineering Chemistry Research 61.32 (2022): 11678−11690
ISSN
0888-5885 (print); 1520-5045 (online)DOI
10.1021/acs.iecr.2c01611Funded by
This work is supported by the following agencies and grants: the Spanish Government under projects RTI2018-095052-BI00 (MICINN/AEI/FEDER, UE) and EIN2020-112153 (MCINN/AEI/10.13039/501100011033), the latter was also supported by the European Union through “NextGenerationEU/PRTR”, Community of Madrid under project S2018/ EMT-4341, and CSIC project I-COOP+ 2019 (ref COOPB20405). P.L. acknowledges the Community of Madrid and the European Social Fund for the financial support received through the contract PEJ-2019-AI/IND-14385. The authors thank Juliana Mejía for her technical assistanceProject
Gobierno de España. RTI2018-095052-BI00; Gobierno de España. AEI/10.13039/501100011033Editor's Version
https://doi.org/10.1021/acs.iecr.2c01611Subjects
QuímicaRights
© 2022 American Chemical SocietyAbstract
The application of structured reactors provides a number of advantages in chemical processes. In this paper, two
different three-dimensional (3D) Fe/SiC catalysts with a square cell geometry have been manufactured by Robocasting: monoliths
(D = 14 and H = 15 mm) and meshes (D = 24 and H = 2 mm) and studied in the catalytic phenol oxidation by hydrogen peroxide
(H2O2) for the sustainable production of dihydroxybenzenes (DHBZ). The fluid dynamics, catalytic performance, reaction rates,
external mass transport limitation, and catalyst stability have been compared in three different reactors, monolithic fixed-bed reactor,
multimesh fixed-bed reactor, and monolithic stirrer reactor, at selected operating conditions. The results show that the mechanical
stirring of the 3D Fe/SiC monoliths avoids the external mass transfer limitation caused by the presence of oxygen bubbles in the
channels (produced from the HOx· species in autoscavenging radical reactions). In addition, the backmixing has a positive effect on
the efficient consumption of H2O2 but an adverse effect on the phenol selectivity to DHBZ since they are overoxidized to tar
products at longer contact times. On the other hand, the wall porosity, and not the backmixing, affects the susceptibility of the 3D
Fe/SiC catalyst to the Fe leaching, as occurs in the mesh structures. In conclusion, the monoliths operating under plug-flow and
external mass transfer limitation in the monolithic fixed-bed reactor (MFB) provide an outstanding phenol selectivity to DHBZ and
catalyst stability
Files in this item
Google Scholar:Vega, Gonzalo
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López, Pablo
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Belmonte, Manuel
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Casas, Jose A.
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Quintanilla Gómez, María Asunción
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