Photocatalytic Reactor Modeling: Application to Advanced Oxidation Processes for Chemical Pollution Abatement.

Top Curr Chem (Cham)

Instituto de Desarrollo Tecnológico para la Industria Química, INTEC (Universidad Nacional del Litoral and CONICET), Ruta Nacional Nº 168, 3000, Santa Fe, Argentina.

Published: August 2019

AI Article Synopsis

  • A methodology for modeling photocatalytic reactors for advanced oxidation processes aimed at reducing chemical pollution is discussed.
  • The paper reviews different reactor types commonly used, including wall reactors, slurry reactors, and fixed-bed reactors, and examines various kinetic expressions crucial for calculating the photocatalytic degradation rates of pollutants.
  • It highlights the importance of accurately evaluating photon absorption rates and optical properties of different systems, and stresses the necessity for a systematic approach in modeling to enhance the efficiency of photocatalytic processes.

Article Abstract

A methodology for photocatalytic reactor modeling applied to advanced oxidation processes for chemical pollution abatement is presented herein. Three distinct reactor configurations typically employed in the field of air and water purification-wall reactors, slurry reactors, and fixed-bed reactors-are considered to illustrate the suggested approach. Initially, different mechanistically derived kinetic expressions to represent the photocatalytic rate of pollutant degradation are reviewed, indicating the main assumptions made by the authors in the published contributions. These kinetic expressions are needed to solve the mass balances of the reactant species in the photocatalytic reactors. As is well known, at least one of the steps of the reaction mechanism requires evaluation of the rate of electron-hole generation, which depends on the photon absorption rate: a volumetric property for reactions with the catalyst particles in aqueous suspension or a surface property for systems with a fixed catalyst deposited on an inert support. Subsequently, the different techniques for evaluating the optical properties of slurry and immobilized systems, and the numerical methods applied to calculate the photon absorption rate, are described. The experimental and theoretical results of pollutant degradation in each reactor type are then presented and analyzed. Finally, the definition, calculation, and relevance of different efficiency parameters are briefly reviewed. Using these illustrative examples, we emphasize the need for a systematic and rigorous approach for photocatalytic reactor modeling in order to overcome the inherent drawbacks of photocatalysis and to improve the overall efficiency of the process.

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Source
http://dx.doi.org/10.1007/s41061-019-0247-2DOI Listing

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