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  4. Efficiency and energy requirements for the transformation of organic micropollutants by ozone, O3/H2O2 and UV/H2O2
 
research article

Efficiency and energy requirements for the transformation of organic micropollutants by ozone, O3/H2O2 and UV/H2O2

Katsoyiannis, I. A.
•
Canonica, S.
•
von Gunten, U.  
2011
Water Research

The energy consumptions of conventional ozonation and the AOPs O3/H2O2 and UV/H2O2 for transformation of organic micropollutants, namely atrazine (ATR), sulfamethoxazole (SMX) and N-nitrosodimethylamine (NDMA) were compared. Three lake waters and a wastewater were assessed. With p-chlorobenzoic acid (pCBA) as a hydroxyl radical (•OH) probe compound, we experimentally determined the rate constants of organic matter of the selected waters for their reaction with •OH (kOH,DOM), which varied from 2.0 × 104 to 3.5 × 104 L mgC-1 s-1. Based on these data we calculated •OH scavenging rates of the various water matrices, which were in the range 6.1-20 × 104 s-1. The varying scavenging rates influenced the required oxidant dose for the same degree of micropollutant transformation. In ozonation, for 90% pCBA transformation in the water with the lowest scavenging rate (lake Zürich water) the required O3 dose was roughly 2.3 mg/L, and in the water with the highest scavenging rate (Dübendorf wastewater) it was 13.2 mg/L, corresponding to an energy consumption of 0.035 and 0.2 kWh/m3, respectively. The use of O3/H2O2 increased the rate of micropollutant transformation and reduced bromate formation by 70%, but the H2O2 production increased the energy requirements by 20-25%. UV/H2O2 efficiently oxidized all examined micropollutants but energy requirements were substantially higher (For 90% pCBA conversion in lake Zürich water, 0.17-0.75 kWh/m3 were required, depending on the optical path length). Energy requirements between ozonation and UV/H2O2 were similar only in the case of NDMA, a compound that reacts slowly with ozone and •OH but is transformed efficiently by direct photolysis. © 2011 Elsevier Ltd.

  • Details
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Type
research article
DOI
10.1016/j.watres.2011.04.038
Web of Science ID

WOS:000292947800001

Author(s)
Katsoyiannis, I. A.
Canonica, S.
von Gunten, U.  
Date Issued

2011

Publisher

Elsevier

Published in
Water Research
Volume

45

Issue

13

Start page

3811

End page

3822

Subjects

Oxidation

•

Energy

•

Ozonation

•

O-3/H2O2

•

Uv/H2O2

•

Scavenging rate

•

Micropollutants

•

Advanced Oxidation Processes

•

Bromide-Containing Waters

•

Radical Rate Constants

•

Drinking-Water

•

Hydrogen-Peroxide

•

N-Nitrosodimethylamine

•

Hydroxyl Radicals

•

Product Formation

•

Bromate Formation

•

Molecular-Weight

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LTQE  
Available on Infoscience
July 14, 2011
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/69584
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