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Título : | Photocatalytic NOx removal: Rigorous kinetic modelling and ISO standard reactor simulation Photocatalytic NOx removal: Rigorous kinetic modelling and ISO standard reactor simulation |
Autor : | Muñoz, V. Casado, C. Suárez, S. Sánchez, B. Marugán, J. |
Palabras clave : | Photocatalysis NOx Mechanistic kinetics Intrinsic parameters CFD |
Fecha de publicación : | 2019 |
Editorial : | Elsevier |
Citación : | Catal. Today 326 (2019) 82-93 |
Resumen : | An air purification reactor working under the standard ISO 22197-1 is studied and used for the determination of
the intrinsic kinetic parameters of the NOx photocatalytic removal. A new mechanistic kinetic model considering
explicitly the radiation step is proposed. The derived reaction rate expressions for NO and NO2 include the
dependence on the concentration of NO, NO2 and the local superficial rate of photon absorption.
The air purification reactor was modelled using a numerical simulation methodology to validate homogeneity
of the light distribution reaching the catalyst surface and go deep in the knowledge of fluid dynamic behaviour.
Based on these results, general guidelines of the reactor behaviour working under the ISO 22197-1 standard can
be stablished, being the first time that this reactor is modelled with a global predictive approach. Radiation
intensity over the catalyst surface was confirmed to reach the specified value of 10 ± 0.5Wm−2. Plug flow can
be applied in the studied reactor with an axial dispersion module lower than 0.001. However, the diffusion of
chemical species in the reactor was also studied, as well as the impact of mass transfer phenomena on the
accuracy of the calculated kinetic parameters. A comprehensive simulation model of the ISO reactor, including
fluid dynamics, radiation, photochemical reaction and mass transfer was developed. The simulation results
confirm that the kinetic parameters obtained without considering mass transfer limitation fail to reproduce the
experimental data, whereas a global error lower than a 17% was achieved including the diffusion of the species
in the reactor. The proposed methodology, experimentally validated, could be successfully applied to the prediction
of the performance of different type of photocatalytic reactors or even open systems for NOx pollutants. |
URI : | http://documenta.ciemat.es/handle/123456789/2363 |
Aparece en las colecciones: | Artículos de Energía
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