Removal of halo-benzoquinone (emerging disinfection by-product) precursor material from three surface waters using coagulation

被引:56
作者
Diemert, Sabrina [1 ]
Wang, Wei [2 ]
Andrews, Robert C. [1 ]
Li, Xing-Fang [2 ]
机构
[1] Univ Toronto, Dept Civil Engn, Toronto, ON M5S 1A4, Canada
[2] Univ Alberta, Dept Lab Med & Pathol, Fac Med & Dent, Edmonton, AB T6G 2G3, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Disinfection byproducts; Halo-benzoquinones; Drinking water; Coagulation; Liquid chromatography-Organic carbon detection; Natural organic matter; DRINKING-WATER; ORGANIC-MATTER; LC-OCD; BROMO-BENZOQUINONES; NOM; CHLORINATION; CHARACTER; IMPACT;
D O I
10.1016/j.watres.2012.12.035
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Halo-benzoquinones (HBQs) have been previously detected as disinfection by-products in chlorinated drinking water. The current work investigates the link between natural organic matter (NOM) characteristics and HBQ formation during bench-scale coagulation of raw water. Three source waters (Lake Ontario, Otonabee River and Grand River) were subjected to jar testing using alum followed by chlorination. NOM fractions were analyzed via liquid chromatography organic carbon detection (LC-OCD), while HBQs were quantified using liquid chromatography triple quadrupole mass spectrometry. One HBQ, 2,6-dichloro-(1,4) benzoquinone (2,6-DCBQ), was identified in all waters after chlorination, and appeared to decrease with increased applied alum dose. 2,6-DCBQ exhibited high correlations with some humic NOM indicators: humic substance concentration (in Grand and Otonabee River waters only), UV absorbance at 254 nm, UV absorbance at 254 nm of the humic peak, and specific UV absorbance of humics (humic SUVA). With data pooled from the three waters, the biopolymer fraction of NOM was most strongly correlated with 2,6-DCBQ formation (R-2 = 0.78, p < 0.001); this may be due to co-removal of biopolymers with HBQ precursors during coagulation. These results indicate that coagulation processes can be effective for reduction, but not elimination, of HBQ precursors. (C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1773 / 1782
页数:10
相关论文
共 38 条
[1]  
Aiken G. R., 1985, HUMIC SUBSTANCES SOI
[2]  
Anichina J., 2012, ENVIRON SCI TECHNOL, V44, P9557
[3]  
[Anonymous], 2003, HUMIC MATTER SOIL EN
[4]   Removal of NOM-constituents as characterized by LC-OCD and F-EEM during drinking water treatment [J].
Baghoth, S. A. ;
Sharma, S. K. ;
Guitard, M. ;
Heim, V. ;
Croue, J. -P. ;
Amy, G. L. .
JOURNAL OF WATER SUPPLY RESEARCH AND TECHNOLOGY-AQUA, 2011, 60 (07) :412-424
[5]  
Baghoth S. A., 2009, Water Science and Technology: Water Supply, V9, P379, DOI 10.2166/ws.2009.569
[6]  
Baird R.B., 2005, Standard methods for the examination of water and wastewater
[7]   Role of quinones in toxicology [J].
Bolton, JL ;
Trush, MA ;
Penning, TM ;
Dryhurst, G ;
Monks, TJ .
CHEMICAL RESEARCH IN TOXICOLOGY, 2000, 13 (03) :135-160
[8]   Chitosan and metal salt coagulant impacts on Cryptosporidium and microsphere removal by filtration [J].
Brown, Trevor J. ;
Emelko, Monica B. .
WATER RESEARCH, 2009, 43 (02) :331-338
[9]  
Bull R.J., 2006, Use of toxicological and chemical models to prioritize DBP research
[10]   Potential carcinogenic hazards of non-regulated disinfection by-products: Haloquinones, halo-cyclopentene and cyclohexene derivatives, N-halamines, halonitriles, and heterocyclic amines [J].
Bull, Richard J. ;
Reckhow, David A. ;
Li, Xingfang ;
Humpage, Andrew R. ;
Joll, Cynthia ;
Hrudey, Steve E. .
TOXICOLOGY, 2011, 286 (1-3) :1-19