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A commentary on the respirometric evaluation of biodegradable cod fractions in industrial wastewater Cover

A commentary on the respirometric evaluation of biodegradable cod fractions in industrial wastewater

Open Access
|May 2020

References

  1. [1] AQUASIM, http://www.eawag.ch/en/department/siam/software/ (access: 07.06.2018).
  2. [2] Babu G., Varghese W., Biodegradation of cyclohexanone and cyclohexanol by the activated sludge process, Journal of Scientific & Industrial Research, Vol. 58/1999, 864–868.
  3. [3] Baczyński T., Przegląd metod służących wyznaczaniu frakcji ChZT w ściekach, “Gaz, Woda i Technika Sanitarna”, Vol. 84 (10)/2010, 29–35.
  4. [4] Baczynski T., Kulakowski P., Biodegradable fractions in paper industry wastewater, [In:] IWA Specialized Conference on Nutrient Management in Wastewater Treatment Processes and Recycle Streams, LEMTECH Consulting, Krakow 2005, 1345–1349.
  5. [5] Coen F., Petersen B., Vanrolleghem P., Vanderhaegen B., Henze M., Model–based characterisation of hydraulic, kinetic and influent properties of an industrial WWTP, “Water Science and Technology”, Vol. 37 (12)/1998, 317–326.10.2166/wst.1998.0557
  6. [6] Cokgor E.U., Insel G., Aydin E., Orhon D., Respirometric evaluation of a mixture of organic chemicals with different biodegradation kinetics, “Journal of hazardous materials”, Vol. 161 (1)/2009, 35–41.10.1016/j.jhazmat.2008.03.05118439757
  7. [7] Ekama G.A., Dold P.L., Marais G.V., Procedures for determining influent COD fractions and the maximum specific growth rate of heterotrophs in activated sludge systems, “Water Science and Technology”, Vol. 18 (6)/1986, 91–114.10.2166/wst.1986.0062
  8. [8] Fan J., Vanrolleghem P.A., Lu S., Qiu Z., Modification of the kinetics for modeling substrate storage and biomass growth mechanism in activated sludge system under aerobic condition, “Chemical engineering science”, Vol. 78/2012, 75–81.10.1016/j.ces.2012.05.004
  9. [9] Ginestet P., Audic J.M., Urbain V., Block J.C., Estimation of nitrifying bacterial activities by measuring oxygen uptake in the presence of the metabolic inhibitors allylthiourea and azide, “Applied and Environmental Microbiology”, Vol. 64 (6)/1998, 2266–2268.10.1128/AEM.64.6.2266-2268.19981063109603846
  10. [10] Guisasola A., Sin G., Baeza J.A., Carrera J., Vanrolleghem P.A., Limitations of ASM1 and ASM3: a comparison based on batch oxygen uptake rate profiles from different full–scale wastewater treatment plants, “Water Science and Technology, Vol. 51 (10–11)/2005, 69–77.10.2166/wst.2005.0680
  11. [11] Helle S.S., Duff S.J., Multi–component kinetics of activated sludge treatment of bleached kraft mill effluent, “Water Science and Technology”, Vol. 50 (3)/2004, 11–20.10.2166/wst.2004.0153
  12. [12] Insel G., Karahan O., Özdemir S., Pala L., Katipoğlu T., Cokgör E.U., Orhon D., Unified basis for the respirometric evaluation of inhibition for activated sludge, “Journal of Environmental Science and Health Part A”, Vol. 41 (9)/2006, 1763–1780.10.1080/1093452060077889516849124
  13. [13] Insel G., Celikyilmaz G., Ucisik-Akkaya E., Yesiladali K., Cakar Z.P., Tamerler C., Orhon D., Respirometric evaluation and modeling of glucose utilization by Escherichia coli under aerobic and mesophilic cultivation conditions, “Biotechnology and bioengineering”, Vol. 96 (1)/2007, 94–105.10.1002/bit.2116316937401
  14. [14] Jaromin K. M., Szaja A., Łagód G. Charakterystyka ścieków komunalnych określana na podstawie udziału frakcji ChZT, [In:] Polska Inżynieria Środowiska. Prace. Tom I, eds. M. R. Dudzińska, A. Pawłowski, Komitet Inżynierii Środowiska PAN, Lublin 2012, 115–130.
  15. [15] Karahan–Gül Ö., Artan N., Orhon D., Henze M., Van Loosdrecht M.C., Respirometric assessment of storage yield for different substrates, “Water Science and Technology”, Vol. 46 (1–2)/2002, 345–352.10.2166/wst.2002.0500
  16. [16] Lehtovirta–Morley L.E., Verhamme D.T., Nicol G.W., Prosser J.I., Effect of nitrification inhibitors on the growth and activity of Nitrosotalea devanaterra in culture and soil, “Soil Biology and Biochemistry”, Vol 62/2013, 129–133.10.1016/j.soilbio.2013.01.020
  17. [17] Marx C., Ahnert M., Krebs P., Kühn V., The adaptation of nitrifying microorganisms to inhibiting substances at meso–and psychrophilic temperature conditions, “Water Science and Technology”, Vol. 68 (1)/2013, 83–90.10.2166/wst.2013.227
  18. [18] Nowak O., Schweighofer P., Svardal K., Nitrification inhibition–a method for the estimation of actual maximum autotrophic growth rates in activated sludge systems, “Water Science and Technology”, Vol. 30 (1)/1994, 9–19.10.2166/wst.1994.0248
  19. [19] Nelson D.W., Huber D., Nitrification inhibitors for corn production, corn.agronomy.wisc. edu/Management/pdfs/NCH55.pdf (access: 07.06.2018).
  20. [20] Orhon D., Babuna F.G., Karahan O., Industrial wastewater treatment by activated sludge, IWA Publishing, London 2009.10.2166/9781780401836
  21. [21] Rezouga F., Hamdi M., Sperandio M., Variability of kinetic parameters due to biomass acclimation: case of para–nitrophenol biodegradation, “Bioresource Technology”, Vol. 100 (21)/2009, 5021–5029.10.1016/j.biortech.2009.05.039
  22. [22] Spanjers H., Vanrolleghem P.A., Respirometry, [In:] Experimental methods in wastewater treatment, eds. van Loosdrecht M.C., Nielsen P.H., Lopez–Vazquez C.M., Brdjanovic D., IWA publishing, London 2016.
  23. [23] Surmacz-Gorska J., Gernaey K., Demuynck C., Vanrolleghem P., Verstraete W., Nitrification monitoring in activated sludge by oxygen uptake rate (OUR) measurements, “Water Research”, Vol. 30 (5)/1996, 1228–1236.10.1016/0043-1354(95)00280-4
  24. [24] Tünay O., Zengin G.E., Kabdaşlı I., Karahan Ö., Performance of magnesium ammonium phosphate precipitation and its effect on biological treatability of leather tanning industry wastewaters, “Journal of Environmental Science and Health, Part A”, Vol. 39 (7)/2004, 1891–1902.10.1081/ESE-12003788615242135
  25. [25] Van Loosdrecht M.C., Lopez-Vazquez C.M., Meijer S.C., Hooijmans C.M., Brdjanovic D., Twenty–five years of ASM1: past, present and future of wastewater treatment modelling, “Journal of Hydroinformatics”, Vol. 17 (5)/2015, 697–718.10.2166/hydro.2015.006
  26. [26] Van Loosdrecht M.C., Nielsen P.H., Lopez–Vazquez C.M., Brdjanovic D., Experimental methods in wastewater treatment, IWA publishing, London 2016.10.2166/9781780404752
  27. [27] Vanrolleghem P.A., Sin G., Gernaey K.V., Transient response of aerobic and anoxic activated sludge activities to sudden substrate concentration changes, “Biotechnology and Bioengineering”, Vol. 86 (3)/2004, 277–290.10.1002/bit.2003215083508
  28. [28] Wang Y., Li W., Irini A., A novel and quick method to avoid H2O2 interference on COD measurement in Fenton system by Na2SO3 reduction and O2 oxidation, “Water Science and Technology”, Vol. 68 (7)/2013, 1529–1535.10.2166/wst.2013.39624135101
  29. [29] Wentzel M.C., Mbewe A., Ekama G.A., Batch test for measurement of readily biodegradable COD and active organism concentrations in municipal waste waters, “WATER SA-PRETORIA”, Vol. 21/1995, 117–124.
  30. [30] Wissemeier A.H., Linzmeier W., Gutser R., Weigelt W., Schmidhalter U., The new nitrification inhibitor DMPP (ENTEC®) – Comparisons with DCD in model studies and field applications, [In:] Plant Nutrition, eds. Horst H.J. et al., Springer, Dordrecht 2001, 702–703.10.1007/0-306-47624-X_340
DOI: https://doi.org/10.4467/2353737XCT.18.184.9672 | Journal eISSN: 2353-737X | Journal ISSN: 0011-4561
Language: English
Page range: 139 - 150
Submitted on: Nov 23, 2018
Published on: May 23, 2020
Published by: Cracow University of Technology
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2020 Tomasz Baczyński, Piotr Beńko, published by Cracow University of Technology
This work is licensed under the Creative Commons Attribution-ShareAlike 4.0 License.