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PMID: 25746958 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Degradation of pharmaceuticals in UV (LP)/H₂O₂ reactors simulated by means of kinetic modeling and computational fluid dynamics (CFD).

Water research ·Vol. 75 ·2015-05-15 ·Pages 11-24

Wols BA, Harmsen DJ, Wanders-Dijk J, Beerendonk EF, Hofman-Caris CH

Abstract

UV/H2O2 treatment is a well-established technique to degrade organic micropollutants. A CFD model in combination with an advanced kinetic model is presented to predict the degradation of organic micropollutants in UV (LP)/H2O2 reactors, accounting for the hydraulics, fluence rate, complex (photo)chemical reactions in the water matrix and the interactions between these processes. The model incorporates compound degradation by means of direct UV photolysis, OH radical and carbonate radical reactions. Measurements of pharmaceutical degradations in pilot-scale UV/H2O2 reactors are presented under different operating conditions. A comparison between measured and modeled degradation for a group of 35 pharmaceuticals resulted in good model predictions for most of the compounds. The research also shows that the degradation of organic micropollutants can be dependent on temperature, which is relevant for full-scale installations that are operated at different temperatures over the year.

Keywords
Advanced oxidation process CFD Modelling Pharmaceuticals UV Water treatment
MeSH Terms
Hydrodynamics Hydrogen Peroxide/chemistry Kinetics Models, Theoretical Pharmaceutical Preparations/chemistry,radiation effects Photolysis Temperature Ultraviolet Rays Waste Disposal, Fluid/methods Water Pollutants, Chemical/chemistry,radiation effects Water Purification/methods
Chemicals
Pharmaceutical Preparations Water Pollutants, Chemical Hydrogen Peroxide
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Wols B A
KWR Watercycle Research Institute, Groningenhaven 7, 3430 BB Nieuwegein, The Netherlands; Delft University of Technology, The Netherlands; Wetsus, Centre for Sustainable Water Technology, P.O. Box 113, Leeuwarden 8900 CC, The Netherlands. Electronic address: [email protected].
Harmsen D J H
KWR Watercycle Research Institute, Groningenhaven 7, 3430 BB Nieuwegein, The Netherlands.
Wanders-Dijk J
Van Remmen UV Techniek, The Netherlands.
Beerendonk E F
KWR Watercycle Research Institute, Groningenhaven 7, 3430 BB Nieuwegein, The Netherlands.
Hofman-Caris C H M
KWR Watercycle Research Institute, Groningenhaven 7, 3430 BB Nieuwegein, The Netherlands.
Article Info
Journal
Water research
Abbr.
Water Res
ISSN
1879-2448
Published
2015-05-15
Epub
2015-00-18
Pages
11-24
Language
English
Region
England
NLM ID
0105072
Subset
IM
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