Microbial risk assessment of drinking water based on hydrodynamic modelling of pathogen concentrations in source water. 2015

Ekaterina Sokolova, and Susan R Petterson, and Olaf Dienus, and Fredrik Nyström, and Per-Eric Lindgren, and Thomas J R Pettersson
Chalmers University of Technology, Department of Civil and Environmental Engineering, Water Environment Technology, SE-412 96 Gothenburg, Sweden. Electronic address: ekaterina.sokolova@chalmers.se.

Norovirus contamination of drinking water sources is an important cause of waterborne disease outbreaks. Knowledge on pathogen concentrations in source water is needed to assess the ability of a drinking water treatment plant (DWTP) to provide safe drinking water. However, pathogen enumeration in source water samples is often not sufficient to describe the source water quality. In this study, the norovirus concentrations were characterised at the contamination source, i.e. in sewage discharges. Then, the transport of norovirus within the water source (the river Göta älv in Sweden) under different loading conditions was simulated using a hydrodynamic model. Based on the estimated concentrations in source water, the required reduction of norovirus at the DWTP was calculated using quantitative microbial risk assessment (QMRA). The required reduction was compared with the estimated treatment performance at the DWTP. The average estimated concentration in source water varied between 4.8×10(2) and 7.5×10(3) genome equivalents L(-1); and the average required reduction by treatment was between 7.6 and 8.8 Log10. The treatment performance at the DWTP was estimated to be adequate to deal with all tested loading conditions, but was heavily dependent on chlorine disinfection, with the risk of poor reduction by conventional treatment and slow sand filtration. To our knowledge, this is the first article to employ discharge-based QMRA, combined with hydrodynamic modelling, in the context of drinking water.

UI MeSH Term Description Entries
D008962 Models, Theoretical Theoretical representations that simulate the behavior or activity of systems, processes, or phenomena. They include the use of mathematical equations, computers, and other electronic equipment. Experimental Model,Experimental Models,Mathematical Model,Model, Experimental,Models (Theoretical),Models, Experimental,Models, Theoretic,Theoretical Study,Mathematical Models,Model (Theoretical),Model, Mathematical,Model, Theoretical,Models, Mathematical,Studies, Theoretical,Study, Theoretical,Theoretical Model,Theoretical Models,Theoretical Studies
D004784 Environmental Monitoring The monitoring of the level of toxins, chemical pollutants, microbial contaminants, or other harmful substances in the environment (soil, air, and water), workplace, or in the bodies of people and animals present in that environment. Monitoring, Environmental,Environmental Surveillance,Surveillance, Environmental
D014871 Water Microbiology The presence of bacteria, viruses, and fungi in water. This term is not restricted to pathogenic organisms. Microbiology, Water
D057446 Hydrodynamics The motion of fluids, especially noncompressible liquids, under the influence of internal and external forces. Fluid Dynamics,Dynamic, Fluid,Dynamics, Fluid,Fluid Dynamic,Hydrodynamic
D060753 Water Quality A rating of a body of water based on measurable physical, chemical, and biological characteristics. Quality, Water
D060766 Drinking Water Water that is intended to be ingested. Bottled Water,Potable Water,Water, Bottled,Water, Drinking,Water, Potable
D018570 Risk Assessment The qualitative or quantitative estimation of the likelihood of adverse effects that may result from exposure to specified health hazards or from the absence of beneficial influences. (Last, Dictionary of Epidemiology, 1988) Assessment, Risk,Benefit-Risk Assessment,Risk Analysis,Risk-Benefit Assessment,Health Risk Assessment,Risks and Benefits,Analysis, Risk,Assessment, Benefit-Risk,Assessment, Health Risk,Assessment, Risk-Benefit,Benefit Risk Assessment,Benefit-Risk Assessments,Benefits and Risks,Health Risk Assessments,Risk Analyses,Risk Assessment, Health,Risk Assessments,Risk Benefit Assessment,Risk-Benefit Assessments

Related Publications

Ekaterina Sokolova, and Susan R Petterson, and Olaf Dienus, and Fredrik Nyström, and Per-Eric Lindgren, and Thomas J R Pettersson
September 2012, Journal of water and health,
Ekaterina Sokolova, and Susan R Petterson, and Olaf Dienus, and Fredrik Nyström, and Per-Eric Lindgren, and Thomas J R Pettersson
November 2019, The Science of the total environment,
Ekaterina Sokolova, and Susan R Petterson, and Olaf Dienus, and Fredrik Nyström, and Per-Eric Lindgren, and Thomas J R Pettersson
January 2007, Journal of water and health,
Ekaterina Sokolova, and Susan R Petterson, and Olaf Dienus, and Fredrik Nyström, and Per-Eric Lindgren, and Thomas J R Pettersson
January 2007, Journal of water and health,
Ekaterina Sokolova, and Susan R Petterson, and Olaf Dienus, and Fredrik Nyström, and Per-Eric Lindgren, and Thomas J R Pettersson
February 2017, Water research,
Ekaterina Sokolova, and Susan R Petterson, and Olaf Dienus, and Fredrik Nyström, and Per-Eric Lindgren, and Thomas J R Pettersson
May 2001, International journal of hygiene and environmental health,
Ekaterina Sokolova, and Susan R Petterson, and Olaf Dienus, and Fredrik Nyström, and Per-Eric Lindgren, and Thomas J R Pettersson
June 1993, International journal of food microbiology,
Ekaterina Sokolova, and Susan R Petterson, and Olaf Dienus, and Fredrik Nyström, and Per-Eric Lindgren, and Thomas J R Pettersson
December 2023, Ying yong sheng tai xue bao = The journal of applied ecology,
Ekaterina Sokolova, and Susan R Petterson, and Olaf Dienus, and Fredrik Nyström, and Per-Eric Lindgren, and Thomas J R Pettersson
May 2018, Environmental pollution (Barking, Essex : 1987),
Ekaterina Sokolova, and Susan R Petterson, and Olaf Dienus, and Fredrik Nyström, and Per-Eric Lindgren, and Thomas J R Pettersson
December 2015, Huan jing ke xue= Huanjing kexue,
Copied contents to your clipboard!