Evaluation of temperature impacts on drinking water treatment efficacy of magnetic ion exchange and enhanced coagulation

被引:5
作者
Anderson, L. [1 ]
Walsh, M. E. [1 ]
机构
[1] Dalhousie Univ, Dept Civil & Resource Engn, Halifax, NS, Canada
来源
JOURNAL OF WATER SUPPLY RESEARCH AND TECHNOLOGY-AQUA | 2012年 / 61卷 / 07期
基金
加拿大自然科学与工程研究理事会;
关键词
coagulation; disinfection by-products; ion exchange; natural organic matter; NATURAL ORGANIC-MATTER; HIGH DOC; REMOVAL; RESIN; ACIDS;
D O I
10.2166/aqua.2012.064
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Magnetic ion exchange (MIEX (R)) is an emerging technology for disinfection by-product (DBP) precursor removal in the drinking water industry. Although recent research has demonstrated that this technology is capable of achieving excellent natural organic matter (NOM) removal, there is paucity of published research showing the efficacy of ion exchange (IX) technology in cold water conditions. The overall objective of this research was to evaluate at bench-scale the potential impact of cold water operating conditions on enhanced coagulation with alum, MIEX (R) and a combination of MIEX (R) and low dose alum. All three treatments were evaluated at 1 and 20 degrees C with settled water quality compared in terms of turbidity, UV254, dissolved organic carbon (DOC), specific UV absorbance (SUVA), trihalomethane formation potential (THMFP) and haloacetic acid formation potential (HAAFP). The results of the study showed that all three technologies evaluated were significantly impacted by cold water operating conditions in terms of turbidity removal, and UV254 removal was significantly reduced in both the MIEX (R) and MIEX (R)-Alum processes. However, treatment of the surface water with the combined process resulted in the highest removal of DBP precursor material and lowest THMFP and HAAFP concentrations at both temperatures compared to the individual unit operations.
引用
收藏
页码:403 / 412
页数:10
相关论文
共 38 条
[1]  
[Anonymous], 2006, STANDARD METHODS EXA, DOI DOI 10.5860/CHOICE.37-2792
[2]   Formation of chlorination by-products. in waters with low SUVA-correlations with SUVA and differential UV spectroscopy [J].
Ates, Nuray ;
Kitis, Mehmet ;
Yetis, Ulku .
WATER RESEARCH, 2007, 41 (18) :4139-4148
[3]  
Beckett R, 2006, INTERFACE SCI TECHNO, V10, P299, DOI 10.1016/S1573-4285(06)80086-4
[4]   Bench-scale testing of a magnetic ion exchange resin. for removal of disinfection by-product precursors [J].
Boyer, TH ;
Singer, PC .
WATER RESEARCH, 2005, 39 (07) :1265-1276
[5]   ION-EXCHANGE FOR THE REMOVAL OF HUMIC ACIDS IN WATER-TREATMENT [J].
BRATTEBO, H ;
ODEGAARD, H ;
HALLE, O .
WATER RESEARCH, 1987, 21 (09) :1045-1052
[6]   Cold water effects on enhanced coagulation of high DOC, low turbidity water [J].
Braul, L ;
Viraraghavan, T ;
Corkal, D .
WATER QUALITY RESEARCH JOURNAL OF CANADA, 2001, 36 (04) :701-717
[7]   Selection of anionic exchange resins for removal of natural organic matter (NOM) fractions [J].
Cornelissen, E. R. ;
Moreau, N. ;
Siegers, W. G. ;
Abrahamse, A. J. ;
Rietueld, L. C. ;
Grefte, A. ;
Dignum, M. ;
Amy, G. ;
Wessels, L. P. .
WATER RESEARCH, 2008, 42 (1-2) :413-423
[8]  
Cornwell D. A., 1999, WATER TREATMENT PLAN
[9]  
Drikas M., 2001, P 19 FED AWA CONV CA
[10]   Long term case study of MIEX pre-treatment in drinking water; understanding NOM removal [J].
Drikas, Mary ;
Dixon, Mike ;
Morran, Jim .
WATER RESEARCH, 2011, 45 (04) :1539-1548