Multimedia fate modeling of antibiotic sulfamethoxazole, lincomycin, and florfenicol in a seasonally ice-covered river receiving WWTP effluents

被引:0
作者
Chang Sun
Deming Dong
Sinan He
Liwen Zhang
Xun Zhang
Chaoqian Wang
Xiuyi Hua
Zhiyong Guo
机构
[1] Jilin University,Key Laboratory of Groundwater Resources and Environment, Ministry of Education, Jilin Provincial Key Laboratory of Water Resources and Environment, College of New Energy and Environment
[2] Jilin Entry - Exit Inspection and Quarantine Bureau,undefined
来源
Environmental Science and Pollution Research | 2019年 / 26卷
关键词
Emerging contaminant; Fugacity model; Ice-covered river; Transport; Transformation; Scenario simulation;
D O I
暂无
中图分类号
学科分类号
摘要
As a result of the widespread use of antibiotics, a large amount of excretions from human and animals, containing antibiotic residues, is discharged into aquatic environments, leading to potential adverse effects on the ecosystems’ health. These residues’ impact on seasonally ice-covered rivers remains under investigated. To understand the environmental fate of antibiotics with high-detection frequencies and concentration levels, sulfamethoxazole, lincomycin, and florfenicol were used as models in the present study. A Level IV fugacity model was established and applied to a seasonally ice-covered river receiving municipal wastewater treatment plant (WWTP) effluents, the Songhua River in Northeast China. Model validation and sensitivity analysis suggested that the fugacity model could successfully simulate the monitoring concentration within an average difference of one logarithmic unit. The advection process played a major role in the transport and attenuation of the antibiotics in the ice-covered river receiving WWTP effluents. The scenario simulation indicated that increasing the targeted antibiotic concentrations in WWTP effluents to μg L−1 could keep the targeted antibiotic concentrations higher than 10 ng L−1 in the receiving river from the WWTP discharge source to 25 km downstream. This finding also demonstrates that the depth of water and ice, as well as flow velocity, play key roles in the fate of antibiotics in the ice-covered river receiving WWTP effluents. To our best knowledge, this is the first major study to combine experimental investigation with modeling to explore the environmental behaviors and fate of antibiotics in such a river.
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页码:17351 / 17361
页数:10
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  • [1] Afenyo M(2016)Dynamic fugacity model for accidental oil release during Arctic shipping Mar Pollut Bull 111 347-353
  • [2] Khan F(2003)Pharmaceuticals in STP effluents and their solar photodegradation in aquatic environment Chemosphere 50 1319-1330
  • [3] Veitch B(2006)Lincomycin solar photodegradation, algal toxicity and removal from wastewaters by means of ozonation Water Res 40 630-638
  • [4] Yang M(2008)Modeling the potential influence of particle deposition on the accumulation of organic contaminants by submerged aquatic vegetation Environ Sci Technol 42 4052-4059
  • [5] Andreozzi R(2018)Occurrence, removal and risk of organic micropollutants in wastewater treatment plants across China: comparison of wastewater treatment processes Water Res 130 38-46
  • [6] Marotta R(2017)Removal of antibiotic florfenicol by sulfide-modified nanoscale zero-valent iron Environ Sci Technol 51 11269-11277
  • [7] Paxeus N(2017)Removal of antibiotics from piggery wastewater by biological aerated filter system: treatment efficiency and biodegradation kinetics Bioresour Technol 238 70-77
  • [8] Andreozzi R(2018)Multimedia fate modeling and risk assessment of antibiotics in a water-scarce megacity J Hazard Mater 348 75-83
  • [9] Canterino M(2016)Occurrence of pharmaceuticals in WWTP effluents and their impact in a karstic rural catchment of eastern France Environ Sci Pollut Res 23 25427-25441
  • [10] Lo Giudice R(2017)Occurrence of antibiotics in rural catchments Chemosphere 168 483-490