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Redox potential measurements for determining the disinfecting power of chlorinated water

Published online by Cambridge University Press:  15 May 2009

K. Victorin
Affiliation:
Department of Environmental Hygiene, The National Institute of Public Health and the Institute of Hygiene, Karolinska Institute, Stockholm, Sweden
K.-G. Hellström
Affiliation:
Department of Environmental Hygiene, The National Institute of Public Health and the Institute of Hygiene, Karolinska Institute, Stockholm, Sweden
R. Rylander
Affiliation:
Department of Environmental Hygiene, The National Institute of Public Health and the Institute of Hygiene, Karolinska Institute, Stockholm, Sweden
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Summary

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The kill of Escherichia coli within 3 min. was studied in chlorine-demand-free water using sodium hypochlorite, monochloramine, dichloramine, halazone, chloramine T, cyanuric acid + sodium hypochlorite and cyanuric acid + monochloramine. The redox potential and the available chlorine were measured. The redox potential was found to be better correlated with the disinfecting property of the water than was the amount of available chlorine. For individual pure chlorine compounds, the measuring of available chlorine showed in general a somewhat better correlation with reduction of the bacteria than the redox potential showed.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1972

References

REFERENCES

Babcock, R. H. (1966). Analytical measurement: 2. Water and Wastes Engineering 3, 56.Google Scholar
Black, A. P., Keirn, M. A., Smith, J. J., Dykes, G. M. & Harlan, W. E. (1970). The disinfection of swimming pool water. II. A field study of the disinfection of public swimming pools. American Journal of Public Health 60, 740–50.CrossRefGoogle Scholar
Carlson, S., Hässelbarth, U. & Mecke, P. (1968). Die Erfassung der desinfizierenden Wirkung gechlorter Schwimmbadwässer durch Bestimmung der Redoxpotentials. Archiv für Hygiene und Bakteriologie 152, 306–20.Google Scholar
Chang, Shih Lu (1945). Applicability of oxidation potential measurements in determining the concentration of germicidally active chlorine in water. Journal of the New England Water Works Association 59, 79101.Google Scholar
Frers, I. N. (1951). Das Mass für die Wirksamkeit der Chlorung. Gesundheitsingenieur 72, 114–7.Google Scholar
Heicken, K. (1956). Über die Desinfektion infektiöser Abwasser. Zentralblatt für Bakteriologie, Parasitenkunde, Infektionskrankheiten und Hygiene, Abt. I. Orig. 165, 156–95.Google Scholar
Katz, S. & Heukelekian, H. (1959). Chlorine determinations in wastewaters. Sewage and Industrial Wastes 31, 9.Google Scholar
Luck, J. R. (1966). ORP for Cl2 residual. Water and Sewage Works, pp. 317–19.Google Scholar
Lund, E. (1963). Oxidative Inactivation ofPoliovirus. Copenhagen: Aarhus Stiftsbogtrykkerie.Google Scholar
Lund, E. (1965). The oxidation potential concept of inactivation of poliovirus in sewage. American Journal of Epidemiology 81, 141–5.CrossRefGoogle Scholar
Moore, E. W. (1951). Fundamentals of chlorination of sewage and waste. Water and Sewage Works 98, 130–6.Google Scholar
Nicolson, N. J. (1965). An evaluation of the methods for determining residual chlorine in water. The Analyst 90, 187–98.CrossRefGoogle Scholar
Orland, H. P. (ed.) (1965). Standard Methods for the Determination of Water and Wastewater, 12th ed., p. 103. American Public Health Association.Google Scholar
Palin, A. T. (1957). The determination of free and combined chlorine in water by the use of DPD. Journal of the American Water Works Association 49, 873–80.CrossRefGoogle Scholar
Palin, A. T. (1958). Simplified methods for determining residual chlorine compounds using diethylparaphenylenediamine (DPD). Water and Water Engineering 62, 30.Google Scholar
Radiometer (1966). Redox Measurements, Their Theory and Technique. Copenhagen: Radiometer A/S.Google Scholar
Rand, M. C. & Hunter, J. V. (1961). Comparison of chlorine determination methods in waste waters. Journal of the Water Pollution Control Federation 33, 393–8.Google Scholar
Schmelkes, F. C. (1933). The oxidation potential concept of chlorination. Journal of the American Water Works Association 25, 695703.CrossRefGoogle Scholar
Schmelkes, F. C. & Horning, E. S. (1935). Bactericidal action of azochloramine. Journal of Bacteriology 29, 323–31.CrossRefGoogle Scholar