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PMID: 26476682 Published · ppublish English Journal Article

Nanoparticle scattering characterization and mechanistic modelling of UV-TiO2 photocatalytic reactors using computational fluid dynamics.

Water research ·Vol. 88 ·2016-01-01 ·页码 117-126

Turolla A, Santoro D, de Bruyn JR, Crapulli F, Antonelli M

Abstract

A computational fluid dynamic (CFD) model was developed to describe the process performance of a semi-batch annular TiO2-UV photoreactor in an Eulerian framework. The model accounted for the optical behaviour of titanium dioxide (TiO2) suspensions, the flow distribution and the oxalic acid degradation in the reactor. The scattering component of the optical model, explicitly included in the CFD simulations using a TiO2-specific scattering phase function integrated in the radiative transfer equation, was calibrated using an optical goniometer by comparing simulated scattering light profiles against irradiance measurements collected for various TiO2 concentrations and UV wavelengths and subsequently solved by the discrete ordinate (DO) radiation model. Several scattering phase functions were tested against the goniometric measurements confirming that the Henyey-Greenstein (HG) equation was the most appropriate angular distribution function at 254 and 355 nm, irrespective of the TiO2 concentration. Using the calibrated HG function, a new approach for quantifying the absolute values of absorption and scattering coefficients in TiO2 suspensions was proposed. It consists of iteratively solving, using the DO model, the radiative transfer equation for various combinations of absorption and scattering coefficients until the error between observed and predicted angular irradiance measurements is minimized. The accuracy of the optical parameters was verified with independent CFD simulations carried out for an annular photoreactor and already available in the literature. Predicted and simulated irradiance and oxalic acid degradation data were found to be in excellent agreement, confirming the considerable potential of the integrated modelling approach presented in this paper for the design, optimization and scale-up of photocatalytic technologies for water and wastewater treatment applications.

Keywords
Advanced oxidation processes CFD simulation Degradation kinetics Henyey-Greenstein function Scattering phase function Titanium dioxide
MeSH 主题词
Absorption, Radiation Catalysis/radiation effects Hydrodynamics Kinetics Models, Theoretical Nanoparticles Oxalic Acid/chemistry Photochemistry Titanium/chemistry Ultraviolet Rays Waste Disposal, Fluid/methods Water Purification/methods
化学物质
titanium dioxide Oxalic Acid Titanium
作者与单位
共 5 位作者,点击展开单位 / ORCID
Turolla Andrea
Politecnico di Milano, Department of Civil and Environmental Engineering (DICA) - Environmental Section, Piazza Leonardo da Vinci 32, 20133 Milano, Italy.
Santoro Domenico
University of Western Ontario, Department of Chemical and Biochemical Engineering, London, Ontario, Canada N6A 5B9; Trojan Technologies, 3020 Gore Road, London, Ontario, Canada N5V 4T7.
de Bruyn John R
University of Western Ontario, Department of Physics and Astronomy, London, Ontario, Canada N6K 3A7.
Crapulli Ferdinando
University of Western Ontario, Department of Chemical and Biochemical Engineering, London, Ontario, Canada N6A 5B9.
Antonelli Manuela
Politecnico di Milano, Department of Civil and Environmental Engineering (DICA) - Environmental Section, Piazza Leonardo da Vinci 32, 20133 Milano, Italy. Electronic address: [email protected].
Article Info
Journal
Water research
Abbr.
Water Res
ISSN
1879-2448
Corresponding email
Published
2016-01-01
电子出版
2015-00-28
页码
117-126
Language
English
Country/Region
England
NLM ID
0105072
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