[1] WÉRY N, LHOUTELLIER C, DUCRAY F, et al. Behaviour of pathogenic and indicator bacteria during urban wastewater treatment and sludge composting, as revealed by quantitative PCR[J]. Water Research, 2008, 42(1-2): 53-57.
[2] 张振兴, 王江权, 郑祥. 水体病原微生物定量风险评价: 历史、现状与发展趋势[J]. 环境科学学报, 2016, 36(1): 1-6.
[3] ESFAHANI A R, BATELAAN O, HUTSON J L. Combined physical, chemical and biological clogging of managed aquifer recharge and the effect of biofilm on virus transport behavior: A column study[J]. Journal of Water Process Engineering, 2019, 33 (10): 1-11.
[4] BEAUDEQUIN D, HARDEN F, ROIKO A , et al Modelling microbial health risk of wastewater reuse: Asystems perspective [J]. Environment International , 2015, 84 (8) : 131-141
[5] 孙傅, 沙婧, 张一帆, 等. 城市景观娱乐水体微生物风险评价[J]. 环境科学, 2013, 34(3): 934-942
[6] KISTEMANNA T, SCHMIDT A A , FLEMMING H C. Post-industrial river water quality: Fit for bathing again? [J]. International Journal of Hygiene and Environmental Health, 2016, 219 (7) : 629-642.
[7] ABIA, A L K, EUNICE U J, GENTH B, et al. Quantitative microbial risk assessment (QMRA) shows increased publichealth risk associated with exposure to river water under conditions ofriverbed sediment resuspension[J]. Science of the Total Environment, 2016, 566/567(5): 1143-1151.
[8] 吴乾元, 李永艳, 胡洪营, 等. 再生水在洗车利用中的暴露剂量研究[J]. 环境科学学报, 2013, 33(3): 845-850.
[9] 王连杰, 李金河, 郑兴灿等. 城镇污水系统中病毒特性和规律相关研究分析[J]. 中国给水排水, 2020, 36(6): 14-21.
[10] 董慧峪, 李凌菲, 刘沛峰, 等. 饮用水消毒工艺对病毒的灭活[J]. 环境工程学报, 2020, 14(7): 1718-1727. doi: 10.12030/j.cjee.202002138
[11] 张松, 李菲菲, 史晨, 等. 生活污水的臭氧深度处理及其急性毒性[J]. 环境工程学报2017, 11(6): 3469-3474.
[12] 潘观连, 张逢, 席劲瑛, 等. 臭氧对再生水中指示病原微生物的灭活特性[J]. 环境工程学报2015, 9(7): 3192-3196.
[13] MELNIK L O, VAKULENKO V F, SAPRYKINA M M, et al. Change of the oxidation-reduction potential of model and natural waters in the ozone disinfection process[J]. Journal of Water Chemistry and Technology, 2021, 43(1): 85-91.
[14] TORII S, MIURA F, ITAMOCHI M, et al. Impact of the heterogeneity in free chlorine, UV254, and ozone susceptibilities among coxsackievirus B5 on the prediction of the overall inactivation efficiency[J]. Environmental Science and Technology, 2021, 55(5) : 3156-3164
[15] ZHAO J, SHANG C, ZHANG X, et al. The multiple roles of chlorite on the concentrations of radicals and ozone and formation of chlorate during UV photolysis of free chlorine[J]. Water Research, 2021, 190(11): 116680.
[16] 刘洪均, 徐涛, 孙春宝. 城市中水用于乌努格吐山铜钼矿浮选过程的研究[J]. 有色金属:选矿部分, 2014(1): 56-60.
[17] 窦培谦, 寇珏, 孙春宝, 等. 城市再生水中大肠杆菌在浮选过程中迁移规律[J]. 工程科学学报, 2017, 39(5): 669-675.
[18] 窦培谦, 寇珏, 孙春宝, 等. 城市再生水中病毒对浮选过程的影响规律[J]. 中国矿业, 2017, 26(8): 133-139.
[19] 窦培谦, 孙春宝. 城市再生水回用于浮选的健康风险评价及应急处置[J]. 安全与环境学报, 2018, 18(1): 252-256.
[20] 中华人民共和国国家卫生和计划生育委员会. 食品微生物学检验 粪大肠菌群计数: GB 4789.39-2013 S].
[21] 程丽娟, 薛泉宏. 微生物学实验技术[M]. 北京: 科学出版社, 2012.
[22] ABIA L K A, UBOMBA-JASWA E, SSEMAKALU C C, et al. Development of a rapid approach for the enumeration of Escherichia coli in riverbed sediment: Case study, the Apies River, South Africa[J]. Journal of Soils and Sediments, 2015, 15(12): 2425-2432.
[23] FEWTRELL L, BARTRAM J. Water Quality: Guidelines, Standards and Health-Assessment of Risk and RiskManagement for Water-Related Infectious Disease World Health Organization (WHO) Water Series[M]. London, IWA Publishing, 2001.
[24] USEPA & USDA/FSIS. Microbial risk assessment guideline: Pathogenic microorganisms with focus on food andwater[EB/OL]. (2012-07)[2022-04].https://www.epa.gov/risk/microbial-risk-assessment-guideline-pathogenic-microorganisms-focus-food-and-water.
[25] 郑晓英, 王俭龙, 李鑫玮等. 臭氧氧化深度处理二级处理出水的研究[J]. 中国环境科学, 2014, 34(5): 1159-1165.
[26] 窦培谦. 再生水中病原微生物在铜钼矿浮选过程中的迁移特征研究[D]. 北京: 北京科技大学, 2019.