[1] |
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]. Mutat Research,2007, 636(1/3):178-242.
|
[2] |
RICHARDSON S D, FASANO F, ELLINGTON J J, et al. Occurrence and mammalian cell toxicity of iodinated disinfection byproducts in drinking water[J]. Environmental Science and Technology,2008, 42(22):8330-8338.
|
[3] |
PLEWA M J, SIMMONS J E, RICHARDSON S D, et al. Mammalian cell cytotoxicity and genotoxicity of the haloacetic acids, a major class of drinking water disinfection by-products[J]. Environmental and Molecular Mutagenesis,2010, 51(8-9):871-878.
|
[4] |
JEONG C H, POSTIGO C, RICHARDSON S D, et al. Occurrence and comparative toxicity of haloacetaldehyde disinfection byproducts in drinking water[J]. Environmental Science and Technology,2015, 49(23):13749-13759.
|
[5] |
LIU J Q, ZHANG X R. Comparative toxicity of new halophenolic DBPs in chlorinated saline wastewater effluents against a marine alga:Halophenolic DBPs are generally more toxic than haloaliphatic ones[J]. Water Research,2014, 65:64-72.
|
[6] |
YANG M T, ZHANG X R. Comparative developmental toxicity of new aromatic halogenated DBPs in a chlorinated saline sewage effluent to the marine polychaete platynereis dumerilii[J]. Environmental Science and Technology,2013, 47(19):10868-10876.
|
[7] |
GOSLAN E H, KRASNER S W, BOWER M, et al. A comparison of disinfection by-products found in chlorinated and chloraminated drinking waters in Scotland[J]. Water Research,2009, 43(18):4698-4706.
|
[8] |
IOANNOU P, CHARISIADIS P, ANDRA S S, et al. Occurrence and variability of iodinated trihalomethanes concentrations within two drinking-water distribution networks[J]. Science of the Total Environment,2016, 543:505-513.
|
[9] |
DING H H, MENG L P, ZHANG H F, et al. Occurrence, profiling and prioritization of halogenated disinfection by-products in drinking water of China[J]. Environmental Science-Processes and Impacts,2013, 15(7):1424-1429.
|
[10] |
王娟. 碘代类消毒副产物生成特性研究[D]. 西安:长安大学, 2014. WANG J, Study on Formation characteristics of Iodinated Disinfection By-products[D]. Xi'an:Chang'an University, 2014(in Chinese).
|
[11] |
徐志法, 赵卫佳, 张睿,等. 饮用水厂消毒副产物有机前驱物及碘代三卤甲烷分布调查[J]. 广东化工,2017, 44(4):7-9
, 11. XU Z F, ZHAO W J, ZHANG R, et al. the Distribution of disinfection by-products organic precursors and iodinated trihalomethanes in drinking water treatment plant[J]. Guangdong Chemical Industry, 2017, 44(4):7-9, 11(in Chinese).
|
[12] |
XU Z F, LI X, HU X L, et al. Distribution and relevance of iodinated X-ray contrast media and iodinated trihalomethanes in an aquatic environment[J]. Chemosphere,2017, 184:253-260.
|
[13] |
HENDERSON R K, BAKER A, PARSONS S A, et al. Characterisation of algogenic organic matter extracted from cyanobacteria, green algae and diatoms[J]. Water Research,2008, 42(13):3435-3445.
|
[14] |
ZHOU S Q, ZHU S M, SHAO Y S, et al. Characteristics of C-, N-DBPs formation from algal organic matter:Role of molecular weight fractions and impacts of pre-ozonation[J]. Water Research,2015, 72:381-390.
|
[15] |
ZHEN W, XU B, LIN Y L, et al. A comparison of iodinated trihalomethane formation from iodide and iopamidol in the presence of organic precursors during monochloramination[J]. Chemical Engineering Journal,2014, 257:292-298.
|
[16] |
刘霞. 太湖蓝藻水华中长期动态及其与相关环境因子的研究[D]. 武汉:华中科技大学, 2012. LIU X. Long-term dynamics of cyanobacteria related to environment factors in Taihu Lake[D]. Wuhan:Huazhong University of Science & Technology, 2012(in Chinese).
|
[17] |
张强. 太湖饮用水源地水质调查与评价[D]. 无锡:江南大学, 2013. ZHANG Q. Assessment and investigation of water quality in the drinking water-source region of Taihu Lake[D]. Wuxi:Jiangnan University, 2013(in Chinese).
|
[18] |
ZHANG Y, SHI G L, GUO C S, et al. Seasonal variations of concentrations, profiles and possible sources of polycyclic aromatic hydrocarbons in sediments from Taihu Lake, China[J]. Journal of Soils and Sediments,2012, 12(6):933-941.
|
[19] |
ZHAI, S J, HU W P, ZHU Z C. Ecological impacts of water transfers on Lake Taihu from the Yangtze River, China[J]. Ecological Engineering,2010, 36(4):406-420.
|
[20] |
张路, 范成新, 王建军,等. 太湖草藻型湖区间隙水理化特性比较[J]. 中国环境科学,2004,24(5):45-49.
ZHANG L, FAN C X, WANG J J, et al. Comparison of phsicochemical characters of pore water in grass/algae type zone in Lake Taihu[J]. China Environmental Science, 2004,24(5):45-49(in Chinese).
|
[21] |
袁信芳, 施华宏, 王晓蓉太湖着生藻类的时空分布特征[J]. 农业环境科学学报,2006, 25(4):1035-1040.
YUAN X F, SHI H H, WANG X R, et al. Temporal and spatial distributions of periphytic algae in Taihu Lake[J]. Journal of Agro-Environment Science, 2006, 25(4):1035-1040(in Chinese).
|
[22] |
BAHR C, SCHUMACHER J, ERNST M, et al. SUVA as control parameter for the effective ozonation of organic pollutants in secondary effluent[J]. Water Science and Technology,2007, 55(12):267-274.
|
[23] |
HUA G H, RECKHOW D A, ABUSALLOUT I. correlation between SUVA and DBP formation during chlorination and chloramination of NOM fractions from different sources[J]. Chemosphere,2015, 130:82-89.
|
[24] |
WEISHAAR J L, AIKEN G R, BERGAMASCHI B A, et al. Evaluation of specific ultraviolet absorbance as an indicator of the chemical composition and reactivity of dissolved organic carbon[J]. Environmental Science and Technology,2003, 37(20):4702-4708.
|
[25] |
MA S C, GAN Y Q, CHAN B Y, et al. Understanding and exploring the potentials of household water treatment methods for volatile disinfection by-products control:Kinetics, mechanisms, and influencing factors[J]. Journal of Hazardous Materials,2017, 321:509-516.
|
[26] |
ABUSALLOUT I, HUA G H. Photolytic dehalogenation of disinfection byproducts in water by natural sunlight irradiation[J]. Chemosphere,2016, 159:184-192.
|
[27] |
ABUSALLOUT I, HUA G H. Natural solar photolysis of total organic chlorine, bromine and iodine in water[J]. Water Research,2016, 92:69-77.
|
[28] |
JONES C E, and CARPENTER L J. Carpenter Solar photolysis of CH2I2, CH2ICI, and CH2IBr in water, saltwater, and seawater[J]. Environmental Science and Technology,2005, 39(16):6130-6137.
|
[29] |
LUO Q, CHEN X C, WEI Z, et al. Simultaneous and high-throughput analysis of iodo-trihalomethanes, haloacetonitriles, and halonitromethanes in drinking water using solid-phase microextraction/gas chromatography-mass spectrometry:An optimization of sample preparation[J]. Journal of Chromatography A,2014, 1365:45-53.
|
[30] |
MARTION M, MILLS G P, WOELTJEN J, et al. A new source of volatile organoiodine compounds in surface seawater[J]. Geophysical Research Letters,2009, 36(1):329-342.
|
[31] |
MANLEY S L, CUESTA J L. Methyl iodide production from marine phytoplankton cultures[J]. Limnology and Oceanography,1997, 42(1):142-147.
|
[32] |
RICHTER U, WALLACE W R. Production of methyl iodide in the tropical Atlantic Ocean[J]. Geophysical Research Letters,2004, 31(23):203-218.
|
[33] |
叶琳琳, 史小丽, 吴晓东,等. 西太湖秋季蓝藻水华过后细胞裂解对溶解性有机碳影响[J]. 中国环境科学,2011, 31(1):131-136.
YE L L, SHI X L, WU X D, et al. The effect of cyanobacteria on dissolved organic carbon post the bloom in autumn in Western Lake Taihu[J]. China Environmental Science, 2011, 31(1):131-136(in Chinese).
|
[34] |
GUO W H, SHAN Y C, YANG X. Factors affecting the formation of iodo-trihalomethanes during oxidation with chlorine dioxide[J]. Journal of Hazardous Materials,2014, 264:91-97.
|
[35] |
PIVOKONSKY M, SAFARIKOVA J, BARESOVA M, et al. A comparison of the character of algal extracellular versus cellular organic matter produced by cyanobacterium, diatom and green alga[J]. Water Research,2014, 51:37-46.
|