[1]
|
Centers for Disease Control and Prevention. Achievements in public health, 1900—1999: Changes in the public health system[J]. Morbidity and Mortality Weekly Report, 1999, 48 (50): 1141-1147
|
[2]
|
Hrudey S E. Chlorination disinfection by-products, public health risk tradeoffs and me[J]. Water Res, 2009, 43 (8): 2057-2092
|
[3]
|
Richardson S D, Plewa M J, Wagner E D, et al. Occurrence, genotoxicity, and carcinogenicity of regulated and emerging disinfection by-products in drinking water: A review and roadmap for research[J]. Mutation Research, 2007, 636 (1/3): 178-242
|
[4]
|
International programme on chemical safety disinfectants and disinfectant by-products[S]. Environmental Health Criteria 216. World Health Organization, 2000 Geneva
|
[5]
|
Mills C J, Bull R, Cantor K, et al. Health risks of drinking water chlorination byproducts: Report of an expert working group[J]. Chronic Dis Canada, 1998, 19 (3): 91-102
|
[6]
|
Nieuwenhuijsen M J, Toledano M B, Eaton N E, et al. Chlorination disinfection byproducts in water and their association with adverse reproductive outcomes: a review[J]. Occup Environ Med, 2000, 57 (2): 73-85
|
[7]
|
Nieuwenhuijsen M J. Adverse reproductive health effects of exposure to chlorination disinfection byproducts[J]. Global NEST Journal, 2005, 7 (1): 128-144
|
[8]
|
Villanueva C M, Cantor K P, Cordier S, et al. Disinfection byproducts and bladder cancer: a pooled analysis[J]. Epidemiology, 2004, 15 (3): 357-67
|
[9]
|
Morris R D, Audet A M, Angelillo I F, et al. Chlorination, chlorination by-products and cancer: a meta-analysis[J]. Am J Public Health, 1992, 82 (7): 955-963
|
[10]
|
Koivusalo M, Jaakkola J J K, Vartiainen T, et al. Drinking water mutagenicity and gastrointestinal and urinary tract cancers: anecological study in Finland[J]. Am J Public Health, 1994, 84 (8): 1223-1228
|
[11]
|
Bull R J, Birnbaum L S, Cantor K, et al. Water chlorination: essential process or cancer hazard?[J]. Fundam Appl Toxicol, 1995, 28 (2): 155-166
|
[12]
|
Swan S H, Neutra R R, Wrensch M, et al. Is drinking water related to spontaneous abortion? Reviewing the evidence from the california department of health services studies[J]. Epidemiology, 1992, 3 (2): 83-93
|
[13]
|
Waller K, Swan S H, Windham S C, et al. Influence of exposure assessment methods on risk estimates in an epidemiologic study of total trihalomethane exposure and spontaneous abortion[J]. J Exp Anal Environ Epidemiol, 2001, 11 (6): 522-531
|
[14]
|
Tardiff R G, Carson M L, Ginevan M E. Updated weight of evidence for an association between adverse reproductive and developmental effects and exposure to disinfection by-products[J]. Regulatory Toxicology & Pharmacology, 2006, 45 (2): 185-205
|
[15]
|
Hwang B F, Jaakkola J J. Water chlorination and birth defects: a systematic review and meta-analysis[J]. Archives of Environmental Health, 2003, 58 (2): 83-91
|
[16]
|
Hwang B F, Magnus P, Jaakkola J J. Risk of specific birth defects in relation to chlorination and the amount of natural organic matter in the water supply[J]. American Journal of Epidemiology, 2002, 156 (4): 374-382
|
[17]
|
Krasner S W, Weinberg H S, Richardson S D, et al. The occurrence of a new generation of disinfection by-products[J]. Environ Sci Technol, 2006, 40 (23): 7175-7185
|
[18]
|
Boorman G A, Dellarco V, Dunnick J K, et al. Drinking water disinfection byproducts: review and approach to toxicity evaluation[J]. Environ Health Perspect, 1999, 107 (Suppl 1): 207-217
|
[19]
|
Krasner S W, McGuire M J, Jacangelo J G, et al. The occurrence of disinfection byproducts in U.S. drinking water[J]. J Am Water Works Assoc, 1989, 81 (8): 41-53
|
[20]
|
Richardson S D. New disinfection by-product issues: emerging DBPs and alternative routes of exposure[J]. Global NEST Journal, 2005, 7 (1): 43-60
|
[21]
|
Qin F, Zhao Y Y, Zhao Y L, et al. A toxic disinfection by-product, 2,6-dichloro-1,4-benzoquinone, identified in drinking water[J]. Angewandte Chemie, 2010, 49 (4): 790-792
|
[22]
|
US EPA. Microbial and disinfection by-product rules-simultaneous compliance guidance manual[S]. United States Environmental Protection Agency, EPA 815-R-99-015, 1999
|
[23]
|
王占生,刘文军. 我国给水深度处理应用发展近况与存在问题. 济南: 全国深度处理研究会2004年年会, 2004
|
[24]
|
Tokmak B, Capar G, Dilek F B, et al. Trihalomethanes and associated potential cancer risks in the water supply in Ankara, Turkey[J]. Environ Res, 2004, 96 (3): 345-352
|
[25]
|
Seidel C, Mcuire M J, Summers R S, et al. Have utilities switched to chloramines?[J]. Journal American Water Works Association, 2005, 97 (10): 87-97
|
[26]
|
Hirose Y, Maeda N, Ohya T, et al. Formation of cyanogen chloride by the reaction of amino-acids with hypochlorous acid in the presence of ammonium ion[J]. Chemosphere, 1988, 17 (5): 865-873
|
[27]
|
Mitch W A, Sharp J O, Trussell R R, et al. N-Nitrosodimethylamine (NDMA) as a drinking water contaminant: A review[J]. Environmental Engineering Science, 2003, 20 (5): 389-404
|
[28]
|
Aieta E M, Berg J D. A review of chlorine dioxide in drinking water treatment[J]. Journal AWWA, 1986, 78 (6): 62-72
|
[29]
|
Glaze W H, Kang J W, Chapin D H. The chemistry of water treatment processes involving ozone, hydrogen peroxide and ultraviolet radiation[J]. Ozone Science and Engineering, 1987, 9 (4): 335-352
|
[30]
|
阮复昌, 莫炳禄, 公国庆, 等. 一种理想的、稳定的杀菌消毒剂-二氧化氯[J]. 广东化工, 1995, 1: 36-39
|
[31]
|
陈华, 彭东升. 三种常用饮用水消毒剂的应用和前景评价[J]. 中国环保产业, 1999, 7: 632-634
|
[32]
|
Richardson S D. Disinfection by-products and other emerging contaminants in drinking water[J]. Trend in Analytical Chemistry, 2003, 22 (10): 666-684
|
[33]
|
IARC. Some Drinking-Water Disinfectants and Contaminants, Including Arsenic. Monographs on the Evaluation of Carcinogenic Risks to Humans, International Agency for Research on Cancer, Lyon, 2004
|
[34]
|
Richardson S D, Drinking water disinfection by-products, Encyclopedia[J]. Environ Anal Remed, 1998, 3: 1398-1421
|
[35]
|
Stevens A A, Moore L A, Slocum C J, et al. By-products of chlorination at ten operating utilities[M]. In Water Chlorination: Chemistry, Environmental Impact and Health Effects. Jolley R L, Condie L W, Johnson J D, et al. Eds. Lewis Publishers: Chelsea, MI, 1990, 6: 579-604
|
[36]
|
Weinberg H S, Krasner S W, Richardson S D, et al. The occurrence of disinfection by-products (DBPs) of health concern in drinking water: results of a nationwide DBP occurrence study. . U.S. Environmental Protection Agency, National Exposure Research Laboratory: Athens, GA, 2002; EPA/600/R-02/068; www.epa.gov/athens/publications/EPA_600_R02_068.pdf
|
[37]
|
Glaze W H, Weinberg H S. Identification and occurrence of ozonation by-products in drinking water. American Water Works Association Research Foundation (AWWARF) and American Water Works Association (AWWA): Denver, CO, 1993
|
[38]
|
McGuire M J, McLain J L, Obolensky A. Information collection rule data analysis. AwwaRF and AWWA: Denver, CO, 2002
|
[39]
|
中华人民共和国卫生部国家标准化管理委员会《生活饮用水卫生标准》GB 5749-2006 ICS C 51[S]. 中华人民共和国国家标准, 2006
|
[40]
|
U S EPA, National primary drinking water regulations: stage 2 disinfectants and disinfection byproducts rule[S]. Fed Reg, 2006, 71: 387-493
|
[41]
|
European Union drinking water standards.. www.nucfilm.com/eu_water_directive.pdf
|
[42]
|
Bull R J, Krasner S W, Daniel P A. Health effects and occurrence of disinfection by-products. Bull R J Ed. AWWA Research Foundation: Denver, CO, 2001
|
[43]
|
Hrudey S E, Hrudey E J. Safe Drinking Water[M]. London: IWA Publishing, 2004
|
[44]
|
Bull R J, Reckhow D A, Rotello V, et al. Use of toxicological and chemical models to prioritize DBP research. American Water Works Association Research Foundation and American Water Works Association: Denver, CO, 2006
|
[45]
|
Rook J J. Formation of haloforms during chlorination of natural waters[J]. Wat Treat Examin, 1974, 23 (2): 234-243
|
[46]
|
Bellar T A, Lichtenberg J J, Kroner R C. The occurrence of organohalides in chlorinated drinking waters[J]. Journal of the American Water Works Association, 1974, 66 (12): 703-706
|
[47]
|
Symons J M. National Organics Reconnaissance Survey. Preliminary assessment of suspected carcinogens in drinking water (Appendices). U.S. Environmental Protection Agency, Washington, D.C. 1975:12-100
|
[48]
|
National Cancer Institute. Carcinogenesis Bioassay of Chloroform[M]. National Cancer Institute, 1976, Bethesda MD
|
[49]
|
Brass H J, Feige M A, Halloran T, et al.Pojasek R B (Ed.). Drinking water quality enhancement through source protection[M]. Ann Arbor Science, Ann Arbor, MI, USA, 1977:393
|
[50]
|
Bichsel Y, Gunten U. Formation of iodo-trihalomethanes during disinfection and oxidation of iodide-containing waters[J]. Env Sci Technol, 2000, 34 (13): 2784-2791
|
[51]
|
Cancho B, Ventura F, Galceran M, et al. Determination, synthesis and survey of iodinated trihalomethanes in water treatment processes[J]. Water Res., 2000, 34 (13): 3380-3390
|
[52]
|
Glaze W H, Henderson J E, Smith G.//Jolley R J (Ed.). Water chlorination environmental impact and health E!ects, Vol. 1[M]. Ann Arbor Science, Ann Arbor, MI, USA, 1975:239
|
[53]
|
Richardson S D, Thruston Jr. A D, Rav-Acha C, et al. Tribromopyrrole, brominated acids, and other disinfection byproducts produced by disinfection of drinking water rich in bromide[J]. Environ Sci Technol, 2003, 37 (17): 3782-3793
|
[54]
|
Krasner S W, Weinberg H S, Richardson S D, et al. Occurrence of new generation of disinfection byproducts[J]. Environ Sci Technol, 2006, 40 (23): 7175-7185
|
[55]
|
US EPA. Method 502.2 Volatile organic compounds in water by purge and trap capillary column gas chromatography wit photoionization and electrolytic conductivity detectors in series [M]. 1995
|
[56]
|
US EPA. Method 524.2 Measurement of purgeable organic compounds in water by capillary column gas chromatography/mass spectrometry[M]. 1995
|
[57]
|
US EPA. Method 551 Determination of chlorination disinfection by-products and chlorinated solvent s in drinking water by liquid - liquid extraction and gas chromatography with electron- capture detection[M]. 1995
|
[58]
|
US EPA. Method 551.1, Determination of chlorination disinfection by-products, chlorinated solvents, and, halogenated pesticides/ herbicides in drinking water by liquid-liquid extraction and gas chromatography with electron-capture detection [M]. 1998
|
[59]
|
IARC, Monographs on the evaluation of carcinogenic risks to humans. Some chemicals that cause tumours of the kidney or urinary bladder in rodents and some other substances. vol. 73, International Agency for Research on Cancer, Lyon, France, 1999
|
[60]
|
Plewa M J, Wagner E D, Muellner M G, et al. Comparative mammalian cell toxicity of N-DBPs and C-DBPs. // Karanfil T, Krasner S W, Westerhoff P, Xie Y (Eds.), Occurrence, Formation, Health Effects and Control of Disinfection By-products in Drinking Water, American Chemical Society, Washington, DC
|
[61]
|
DeMarini D M, Shelton M L, Warren S H. Glutathione S-transferase-mediated induction of GC AT transitions by halomethanes in Salmonella[J]. Environ Mol Mutagen, 1997, 30 (4): 440-447
|
[62]
|
Pegram R A, Andersen M E, Warren S H, et al. Glutathione S-transferase-mediated mutagenicity of trihalomethanes in Salmonella typhimurium: contrasting results with bromodichloromethane or chloroform[J]. Toxicol Appl Pharmacol, 1997, 144 (1): 183-188
|
[63]
|
IARC, Re-evaluation of some organic chemicals, hydrazine and hydrogen peroxide.vol. 71, International Agency for Research on Cancer, Lyon, France, 1999
|
[64]
|
IARC, Monographs on the evaluation of carcinogenic risks to humans. Coffee, tea, mate, methylxanthines and methylglyoxal. vol. 51, International Agency for Research on Cancer, Lyon, France, 1991
|
[65]
|
U.S. Environmental Protection Agency, National primary drinking water regulations: stage 2 disinfectants and disinfection byproducts rule[S]. Fed Reg, 2006, 71, 387-493
|
[66]
|
Christman R F, Norwood D L, Millington D S, et al. Identity and yields of major halogenated products of aquatic fulvic acid chlorination[J]. Environ Sci Technol, 1983, 17 (10): 625-628
|
[67]
|
Zhang X, Echigo S, Minear R A, et al. Characterization and comparison of disinfection by-products of four major disinfectants.//Barrett S E, Krasner S W, Amy G L (Eds.), Natural Organic Matter and Disinfection By-products: Characterization and Control in Drinking Water. American Chemical Society, Washington, DC, 2000: 299-314
|
[68]
|
McGuire M J, McLain J L, Obolensky A, et al. Information collection rule data analysis. AWWA Foundation and AWWA, Denver, CO, 2002. U.S. Environmental Protection Agency, ICR Auxiliary 1 Database: Version 5.0, Query Tool-Version 2.0, Office of Water, Washington, DC, 2000
|
[69]
|
Colclough C A, Johnson J D, Christman R F, et al. Organic reaction products of chlorine dioxide and natural aquatic fulvic acids.// Jolley R L (Ed.), Water Chlorination: Environmental Impact and Health Effects[M]. Ann Arbor Science, Ann Arbor, MI, 1983:219-229
|
[70]
|
Monarca S, Rizzoni M, Gustavino B, et al. Genotoxicity of surface water treated with different disinfectants using in situ plant tests[J]. Environ Mol Mutagen, 2003, 41 (5): 353-359
|
[71]
|
Cemeli E, Wagner E D, Anderson D, et al. Modulation of the cytotoxicity and genotoxicity of the drinking water disinfection byproduct iodoacetic acid by suppressors of oxidative stress[J]. Environ Sci Technol, 2006, 40 (6): 1878-1883
|
[72]
|
Plewa M J, Wagner E D, Richardson S D, et al. Chemical and biological characterization of newly discovered iodoacid drinking water disinfection byproducts[J]. Environ Sci Technol, 2004, 38 (18): 4713-4722
|
[73]
|
Richardson S D, Crumley F G, Ellington J J, et al. Occurrence and toxicity of iodo-acid and iodo-THM DBPs in chloraminated drinking water. //Proceedings of Symposium on Safe DrinkingWater: Where Science Meets Policy[J]. Carolina Environmental Program, 2006
|
[74]
|
Plewa M J, Kargalioglu Y, Vankerk D, et al. Mammalian cell cytotoxicity and genotoxicity analysis of drinking water disinfection by-products[J]. Environ Mol Mutagen, 2002, 40 (2): 134-142
|
[75]
|
Plewa M J, Wagner E D, Kim A C, et al. Mammalian cell cytotoxicity and genotoxicity of new drinking water DBPs, Presentation, Environ. Mutagen Soc. Conf Miami Beach FL USA, 2003
|
[76]
|
Hunter E S III, Tugman J A. Inhibitors of glycolytic metabolism affect neurulation-staged mouse conceptuses in vitro[J]. Teratology, 1995, 52: 317
|
[77]
|
US EPA. Method 552.1 Determination of haloacetic acids and dalapon in drinking water by ion-exchange liquid-solid extraction and gas chromatography with an electron capture detector[S]. Rev 1.0 1992 Cincinnati, Ohio
|
[78]
|
US EPA. Method 552.2 Determination of haloacetic acids and dalapon in drinking water by liquid-liquid extraction, derivatization and gas chromatography with electron capture detection[S]. Rev 1.0 1995 Cincinnati, Ohio
|
[79]
|
US EPA. Method 552.3 Determination of haloacetic acids and dalapon in drinking water by liquid-liquid microextraction, derivatization, and gas chromatography with electron capture detection[S]. Rev 1.0 2003 Cincinnati, Ohio
|
[80]
|
US EPA Standard method 6251B Disinfection by-products: haloacetic acids and trichlorophenol, micro liquid-liquid extraction GC method, //Standard Methods for the Examination of Water and Wastewater[S]. 19th ed, 1995
|
[81]
|
Gordon G, Slootmaekers B, Tachiyashiki S, et al. Minimizing chlorite ion and chlorate ion in water treated with chlorine dioxide[J]. J Am Water Works Assoc, 1990, 82 (4): 160-165
|
[82]
|
Bolyard M, Fair P S, Hautman D P. Occurrence of chlorate in hypochlorite solutions used for drinking water disinfection[J]. Environ Sci Technol, 1992, 26 (8): 1663-1665
|
[83]
|
Hoehn R C, Ellenberger C S, Gallagher D L, et al. ClO2 and by-product persistence in a drinking water system[J]. J Am Water Works Assoc, 2003, 95 (4): 141-150
|
[84]
|
Baribeau H, Prevost M, Desjardins R, et al. Chlorite and chlorate ion variability in distribution systems[J]. J Am Water Works Assoc, 2002, 94 (7): 96-105
|
[85]
|
Korn C, Andrew R C, Escobar M D, et al. Development of chlorine dioxide-related by-product models for drinking water treatment[J]. Water Res, 2002, 36 (2): 330-342
|
[86]
|
Miltner R. The effect of chlorine dioxide on trihalomethanes in drinking water. University of Cincinnati, 1976
|
[87]
|
Werdehoff K S, Singer P C. Chlorine dioxide effects on THMFP, TOXFP, and the formation of inorganic by-products[J]. J Am Water Works Assoc, 1987, 79 (9): 107-113
|
[88]
|
Noack M G, Doerr R L. Reactions of chlorine, chlorine dioxide and mixtures thereof with humic acid.//Jolley R L, Gorchev H, Hamilton D H, Jr. (Eds.), Water Chlorination: Chemistry, Environmental Impact and Health Effects[M]. vol. 2, Ann Arbor Science, Ann Arbor, MI, 1981: 49-58
|
[89]
|
Gates D J. The chlorine dioxide handbook. Water Disinfection Series, American Water Works Association, Denver, CO, 1998
|
[90]
|
Muellner M G, Wagner E D. Haloacetonitriles vs. regulated haloacetic acids: are nitrogen-containing DBPs more toxic?[J]. Environ Sci Technol, 2007, 41 (2): 645-651
|
[91]
|
Williams D T, LeBel G L, Benoit F M. Disinfection byproducts in Canadian drinking water[J]. Chemosphere, 1997, 34 (2): 299-316
|
[92]
|
Krasner S W, McGuire M J, Jacangelo J G, et al. The occurrence of disinfection byproducts in United States drinking water[J]. J Am Water Works Assoc, 1989, 81 (8): 41-53
|
[93]
|
Ahmeda A E, Aronsonb J, Jacoba S. Induction of oxidative stress and TNF-α secretion by dichloroacetonitrile, a water disinfectant by product, as possible mediators of apoptosis or necrosis in a murine macrophage cell line ( RAW ) [J]. Toxicology in Vitro, 2000, 7: 199-210
|
[94]
|
田世忠, 张立尖. 水中含氮物质氯化消毒后对饮用水水质的影响[J]. 污染防治技术, 1994, 7 (3): 19-26
|
[95]
|
Holmbom B, Voss R H, Mortimer R D, et al. Fractionation, isolation and characterization of Ames-mutagenic compounds in kraft chlorination effluents[J]. Environ Sci Technol, 1984, 18 (5): 333-337
|
[96]
|
Hemming J, Holmbom B, Reunanen M, et al. Determination of the strong mutagen 3-chloro-4-dichloromethyl-5-hydroxy-2(5H)-furanone in chlorinated drinking and humic waters[J]. Chemosphere, 1986, 15 (5): 549-556
|
[97]
|
Kronberg L, Singh R, Ball L, et al. Identification of mutagenic by-products from aquatic humic chlorination. AWWARF: Denver, CO, 1990
|
[98]
|
Holmbom B, Kronberg L, Smeds A, et al. Chemical stability of the mutagens 3-chloro-4-(dichloromethyl)-5-hydroxy-2(5H)-furanone (MX) and E-2-chloro-3-(dichloromethyl)-4-oxo-butenoic acid (E-MX)[J]. Chemosphere, 1989, 18 (11/12): 2237-2245
|
[99]
|
|
[100]
|
Suzuki N, Nakanishi J. Brominated analogues of MX (3-chloro-4-(dichloromethyl)-5-hydroxy-2(5H)-furanone) in chlorinated drinking water[J]. Chemosphere, 1995, 30 (8): 1557-1564
|
[101]
|
Wright J M, Schwartz J, Vartiainen T. 3-Chloro-4-(dichloromethyl)-5-hydroxy-2(5H)-furanone (MX) and mutagenic activity in Massachusetts drinking water[J]. Environ Health Perspect, 2002, 110 (2): 157-164
|
[102]
|
Onstad G D, Weinberg H S. Proc Am Water Works Assoc Water Qual Technol Conf. American Water Works Association, Denver, CO, USA, 2001
|
[103]
|
Kanniganti R, Johnson J D, Ball L M, et al. Identification of compounds in mutagenic extracts of aqueous monochloraminated fulvic acid[J]. Environ Sci Technol, 1992, 26 (10): 1998-2004
|
[104]
|
Zwiener C, Kronberg L. Determination of the strong mutagen 3-chloro-4-(dichloromethyl)-5-hydroxy-2(5H)-furanone (MX) and its analogues by GC-ITD-MS-MS[J]. Fresenius J Anal Chem, 2001, 371: 591-597
|
[105]
|
Meier J R, Knohl R B, ColemanW E, et al. Studies on the potent bacterial mutagen, 3-chloro-4-(dichloromethyl)-5-hydroxy-2(5H)-furanone: aqueous stability, XAD recovery and analytical determination in drinking water and chlorinated humic acid solutions[J]. Mutat Res, 1987, 189: 363-373
|
[106]
|
Kronberg L, Holmblom B, Reunanen M, et al. Identification and quantification of the Ames mutagenic compound 3-chloro-4-(dichloromethyl)-5-hydroxy-2(5H0-furanone and its geometric isomer (E)-2-chloro-3-(dichloromethyl)-4-oxobutenoic acid in chlorine-treated humic water and drinking water extracts[J]. Environmental Science & Technology, 1988, 22 (9): 1097-1103
|
[107]
|
Tikkanen L, Kronberg L. Genotoxic effects of various chlorinated butenoic acids identified in chlorinated drinking water[J]. Mutation Research, 1990, 240 (2): 109-116
|
[108]
|
Koivusalo M. The assessment of past exposure to drinking water mutagenicity in an ecologic study on cancer risk[J]. Archives of Environmental Health, 1991, 46 (3): 181
|
[109]
|
Smeds A. Concentrations of Ames mutagenic chlorohydroxyfuranones and related compounds in drinking water[J]. Environ Sci Technol, 1997, 31(4): 1033-1039
|
[110]
|
Plewa M J, Wagner E D, Jazwierska P, et al. Halonitromethane drinking water disinfection byproducts: chemical characterization and mammalian cell cytotoxicity and genotoxicity[J]. Environ Sci Technol, 2004, 38 (1): 62-68
|
[111]
|
Richardson S D, Thruston Jr A D, Caughran T V, et al. Identification of new drinking water disinfection byproducts formed in the presence of bromide[J]. Environ Sci Technol, 1999, 33 (19): 3378-3383
|
[112]
|
Richardson S D, Thruston Jr. A D, Caughran T V, et al. Identification of new ozone disinfection byproducts in drinking water[J]. Environ Sci Technol, 1999, 33 (19): 3368-3377
|
[113]
|
Krasner S W, Chinn R, Hwang C J, et al. Proceedings of the AWWA Water Quality Technology Conference. AWWA Denver, CO, 1991.
|
[114]
|
Plewa M J, Wagner E D, Jazwierska P, et al. Halonitromethane drinking water disinfection byproducts: chemical characterization and mammalian cell cytotoxicity and genotoxicity[J]. Environ Sci Technol, 2004, 38 (1): 62-68
|
[115]
|
Hoigne J, Bader H. Formation of trichloronitromethane (chloropicrin) and chloroform in a combined ozonation/chlorination treatment of drinking water[J]. Water Res, 1998, 22 (3): 313-319
|
[116]
|
Reding R, Fair P S, Sharp C J, et al. Measurement of dihaloacetonitriles and chloropicrin in U.S. drinking waters.In Disinfection By-Products: Current Perspectives; American Water Works Association: Denver, CO, 1989
|
[117]
|
Krasner S W, Coffey B M, Hacker P A, et al. International working group on biodegradable organic matter in drinking water.//Proceedings of the Fourth International BOM Conference. Waterloo, Canada, 1996
|
[118]
|
Choi J, Richardson S D. Formation of halonitromethanes in drinking water.//Proceedings of the International Workshop on Optimizing the Design and Interpretation of Epidemiologic Studies to Consider Alternative Disinfectants of Drinking Water.U.S. EPA, Raleigh, NC, 2005
|
[119]
|
Kundu B, Richardson S D, Swartz P D. Mutagenicity in Salmonella of halonitromethanes: A recently recognized class of disinfection byproducts in drinking water[J]. Mutation Research, 2004, 562 (1/2): 39-65
|
[120]
|
王超,胡洪营,王丽莎,等.典型含氮有机物的氯消毒副产物生成潜能研究[J]. 中国给水排水,2006,22 (15):9-12
|
[121]
|
Joo S H, Mitch W A. Nit rile, aldehyde, and halonit roalkane formation during chlorination/ chloramination of primary amines[J]. Environment Science and Technology, 2007, 41 (4): 1288-1296
|
[122]
|
Krasner S W, Pastor S, Chinn R, et al. Proceedings of the 2001 American Water Works Association Water Quality Technology Conference. American Water Works Association: Denver, CO, 2001
|
[123]
|
Chen P H, Richardson S D, Majetich G, et al. Hydrogen abstraction and decomposition of tribromonitromethane and other trihalo compounds by GC/MS[J]. Environ Sci Technol, 2002, 36 (15): 3362-3371
|
[124]
|
Woo Y T, Lai D, McLain J L, et al. Use of mechanism based structure activity relationships analysis in carcinogenic potential ranking for drinking water disinfection by products[J]. Environment Health Prospect, 2002, 110 (1): 75-87
|
[125]
|
Richardson S D, Ternes T A. Water analysis: emerging contaminants and current issues[J]. Anal Chem, 2005, 77 (12): 3807-3838
|
[126]
|
Hunter E S III, Rogers E H, Schmid J E, et al. Comparative effects of haloacetic acids in whole embryo culture[J]. Teratology, 1996, 54 (2): 57-64
|
[127]
|
Richardson S D. Water analysis: emerging contaminants and current issues[J]. Anal Chem, 2009, 81 (12): 4645-4677
|
[128]
|
International Agency for Research on Cancer. IARC monographs on the evaluation of the carcinogenic risk of chemicals to humans: Some N-troso compounds[J]. 1978, 17: 365
|
[129]
|
Taguchi V, Jenkins S D W, Wang D T, et al. Determination of N-nitrosodimethylamine by isotope-dilution, high-resolution mass-spectrometry[J]. Can J Appl Spectrosc, 1994, 39 (3): 87-93
|
[130]
|
Jobb D B, Hunsinger R B, Meresz O, et al. Removal of N-Nitrosodimethylamine from the Ohsweken (Six Nations) Water Supply[M]. Toronto: Ontario Ministry of Environment, 1994
|
[131]
|
Charrois J W, Arend M W, Froese K L, et al. Detecting N-nitrosamines in drinking water at nanogram per liter levels using ammonia positive chemical ionization[J]. Environ Sci Technol, 2004, 38 (18): 4835-4841
|
[132]
|
Charrois J W, Boyd J M, Froese K L, et al. Occurrence of N-nitrosamines in Alberta public drinking-water distribution systems[J]. J Environ Eng Sci, 2007, 6 (1): 103-114
|
[133]
|
Charrois J W, Hrudey S E. Breakpoint chlorination and free-chlorine contact time: Implications for drinking water N-nitrosodimethylamine concentrations[J]. Water Res, 2007, 41(3): 674-682
|
[134]
|
Zhao Y Y, Boyd J M, Hrudey S E, et al. Characterization of new nitrosamines in drinking water using liquid chromatography tandem mass spectrometry[J]. Environ Sci Technol, 2006, 40 (24): 7636-7641
|
[135]
|
Zhao Y Y, Boyd J M, Woodbeck M, et al. 2008. Formation of N-nitrosamines during treatments of surface waters using eleven different disinfection methods[J]. Environ Sci Technol, 42 (13): 4857-4862
|
[136]
|
Munch J W, Bassett M V. Method 521. Determination of nitrosamines in drinking water by solid phase extraction and capillary column gas chromatography with large volume injection and chemical ionization tandem mass spectrometry (MS/MS)[S]. National Exposure Research Laboratory, US EPA, 2004
|
[137]
|
Raksit A, Johri A. Determination of N-nitrosodimethylamine in environmental aqueous samplesby isotope-dilution GC/MS-SIM[J]. Journal of AOAC International, 2001, 84 (5) 1413-1419
|
[138]
|
Mitch W A, Sedlak D L. Formation of N-nitrosodimethylamine (NDMA) from dimethylamine during chlorination[J]. Environmental Science & Technology, 2002, 36 (4): 588-595
|
[139]
|
Zhou W J, Boyd J M, Qin F, et al. Formation of N-nitrosodiphenylamine and two new N-containing disinfection byproducts from chloramination of water containing diphenylamine[J]. Environ Sci Technol, 2009, 43 (21), 8443-8448
|
[140]
|
Barrett S, Hwang C, Guo Y, et al. Occurrence of NDMA in drinking water: a North American Survey, 2001-2002. Proceedings of the AWWA Annual Conference, 2003
|
[141]
|
Government of Ontario. Safe drinking water act[S]. Ontario Regulation 169/03, Schedule 2, 2002
|
[142]
|
California Department of Health Services. California drinking water: Activities related to NDMA and other Nitrosamines
|
[143]
|
Zhao Y L, Qin F, Boyd J M, et al. Characterization and determination of chloro- and bromo-benzoquinones as new chlorination disinfection byproducts in drinking water[J]. Anal Chem, 2010, 82 (11): 4599-4605
|
[144]
|
Heasley V L, Fisher A M, Herman E E, et al. Investigations of the reactions of monochloramine and dichloramine with selected phenols: Examination of humic acid models and water contaminants[J]. Environ Sci Technol, 2004, 38 (19): 5022-5029
|
[145]
|
Anichina J, Zhao Y L, Hrudey S E, et al. Electrospray ionization mass spectrometry characterization of interactions of newly identified water disinfection byproducts halobenzoquinones with oligodeoxynucleotides[J]. Environ Sci Technol ASAP DOI:10.1021/es1024492
|
[146]
|
Richardson S D, DeMarini D M, Kogevinas M, et al. What's in the pool? a comprehensive identification of disinfection by-products and assessment of mutagenicity of chlorinated and brominated swimming pool water[J]. Environmental Health Perspectives, 2010, 118(11): 1523-1530
|
[147]
|
Cantor K P, Villanueva C M, Silverman D T, et al. Polymorphisms in GSTT1, GSTZ1, and CYP2E1, disinfection by-products, and risk of bladder cancer in Spain[J]. Environmental Health Perspectives, 2010,118(11): 1545-1550
|