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Modeling ClO2-NOM Reactions for Predicting Byproduct Formation and Micropollutant Degradation in Surface Water
Jiadong Peng1, Senhao Lu1, Chii Shang1,2
1Department of Civil and Environmental Engineering, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon 999077, Hong Kong.
Abstract:
Chlorine dioxide (ClO2) is a promising alternative disinfectant/oxidant to free chlorine in drinking water treatment, while it reacts with natural organic matter (NOM) to form free chlorine, chlorite ions (ClO2-), and chlorate ions (ClO3-) as byproducts. Predicting the ClO2 consumption and the formation of these byproducts using a kinetic model helps to balance the trade-off between disinfection/oxidation efficiency and byproduct formation. This study establishes a summative equation to describe the reaction between ClO2 and ClO2-reactive moieties in the NOM (CRNOM). The average molar yields of ClO2-, free chlorine, Cl-, and ClO3- from the reactions between ClO2 and nine NOM isolates are determined to be 0.576 ± 0.017, 0.258 ± 0.022, 0.141 ± 0.010, and 0.039 ± 0.002 per consumed ClO2, respectively. The bimolecular rate constants of CRNOM toward ClO2 (kCRNOM-ClO) are comparable among nine NOM isolates (683 ± 57 M-1·s-1 at pH 7.0). The CRNOM concentrations and kCRNOM-ClO increase by 2-fold and 1.3-fold, respectively, as pH increases from 6.0 to 9.0, while pH barely affects the molar yields of inorganic products. A kinetic model is established and enables the accurate prediction of ClO2- and ClO3- formation and ofloxacin degradation during ClO2 oxidation in surface water.
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