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Assessment of the Quality of Wastewater Generated During Production at a Tannery Plant

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The aim of the study was to determine the composition of wastewater generated in a small tannery plant in the Podlaskie Province at different stages of the technological process. Since the plant uses chromium salts for the actual tanning process and the resulting wastewater is separated into two streams, it was possible to determine the content of chromium and other pollutants in the wastewater at different stages of the production processes. This allowed us to evaluate the biodegradability of the wastewater produced during production, the concentration of chromium compounds and other contaminants. Based on the results obtained, the wastewater generated during the production process was found to be non-biodegradable (except for the mixed wastewater) with chromium concentrations of 2.0–2.46 g/dm3.
Słowa kluczowe
Rocznik
Strony
109--115
Opis fizyczny
Bibliogr. 22 poz., rys., tab.
Twórcy
  • Białystok University of Technology, ul. Wiejska 45a, 15-351 Białystok, Poland
  • Białystok University of Technology, ul. Wiejska 45a, 15-351 Białystok, Poland
Bibliografia
  • 1. Chmielowski K. 2019. Water and wastewater from the tanning industry. Municipal review, 1, 28–31. (in Polish)
  • 2. Dymaczewski Z. 2011. Wastewater treatment plant operator’s handbook. Poznań. (in Polish)
  • 3. Famielec S. 2014. Tannery waste incineration process in a tunnel furnace as a method for its disposal. Doctoral dissertation. Politechnika Krakowska, Kraków. (in Polish)
  • 4. Karamus Ł. 2017. Waste water treatment plants and their operation. Wydawnictwo KaBe, Krosno. (in Polish)
  • 5. Lenort R., Stas D., Wicher P., Holman D., Ignatowicz K. 2017. Comparative Study of Sustainable Key Performance Indicators in Metallurgical Industry. Rocznik Ochrona Srodowiska, 19, 36–51
  • 6. Mendrycka M., Stawarz M. 2012. Application of a biopreparation supporting active sludge treatment of tannery wastewater. Inżynieria Ekologiczna, 28, 43–56. (in Polish)
  • 7. Lozowicka B., Kaczynski P. Szabunko J., Ignatowicz K., Warentowicz D., Lozowick J. 2016. New rapid analysis of two classes of pesticides in food wastewater by quechers-liquid chromatography/ mass spectrometry. Journal of Ecological Engineering, 17(3), 97–105
  • 8. Ignatowicz K. 2009. Occurrence Study of AgroChemical Pollutants In Waters Of Suprasl Catchment. Archives Of Environmental Protection, 35(4), 69–77.
  • 9. Kubala A., Przywara L. 2015. Oxidation of sulphides in tannery wastewater.ECOpole’14 Conference 15–17.10.2014, Jarnoltowek, Poland, 9(1), 253–260. (in Polish)
  • 10. Kogut P. Piekarski J., Ignatowicz K. 2014. Start-up of Biogas Plant with Inoculating Sludge Application. Rocznik Ochrona Srodowiska, 16, 534–545.
  • 11. Lofrano G., Meriç S., Zengin G.E., Orhon D. 2013. Chemical and biological treatment technologies for leather tannery chemicals and wastewaters: A review. Science of the Total Environment, 461–462, 265–281.
  • 12. Celary P., Sobik-Szołtysek J. 2014. Vitrification of sludge from the tanning industry with glass cullet. Inżynieria i ochrona środowiska, 17(3), 449–457. (in Polish)
  • 13. Ascón-Aguilar E., Marrufo-Saldaña L., Neyra-Ascón W. 2019. Reduction of Total Chromium Levels from Raw Tannery Wastewater via electrocoagulation using response surface methodology. Journael of Ecological Engineering, 20(11), 217–224.
  • 14. Mahmudi M., Arsad S., Amelia M.C., Rohmaningsih H.A., Prasetiya F.S. 2020. An alternative activated carbon from agricultural waste on chromium removal. Journal of Ecological Engineering, 21(8), 1–9.
  • 15. Rydin S., Black M., Scalet B.S., Canova M. 2013. Best Available Techniques (BAT) reference document for: Leather tanning.
  • 16. Kopczyńska B., Staszak K., Prochaska K. 2011. Removal of chromium (III) ions from aqueous solutions by micellar ultrafiltration technique (MEUF). Inż. Ap. Chem., 50(5), 58–59. (in Polish)
  • 17. Wojtal T. 2017. Adsorption of chromium (III) ions and chromium (VI) ions on nanoporous alumina. Papers of the Institute of Ferrous Metallurgy, 69(4), 48–52. (in Polish)
  • 18. Malovanyy M., Palamarchuk O., Trach I., Petruk H., Sakalova H., Soloviy K., Vasylinych T., Tymchuk I., Vronksa N. 2020. Adsorption Extraciotn of Chromium Ions (III) with the Help of Bentonite Clays. Journal of Ecological Engineering, 21(7), 178–185.
  • 19. Bień J., Celary P., Wystalska K. 2017. The problems in achieving sustainable development in the tannery industry in regard to sewage sludge management. Journal of Ecological Engineering, 18(6), 13–20.
  • 20. Ignatowicz K. 2011. Metals content chosen for environmental component monitoring in graveyards, Fresen. Environ. Bull., 20(1a), 270–273.
  • 21. Manjushree Ch., Mostafa M.G., Tapan Kumar Biswas, Mandal A., Kumar Saha A. 2015. Characterization of the Effluents from Leather Processing Industries Environ. Process., 2, 173–187. DOI: 10.1007/s40710-015-0065-7
  • 22. Christopher J.G., Kumar G., Tesema A.F., Thi N.B.D., Kobayashi T., Xu K. 2016. Bioremediation for Tanning Industry: A Future Perspective for Zero Emission. Management of Hazardous Wastes. Ed.: Hosam Saleh. IntechOpen, DOI: 10.5772/63809
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-57152468-4d92-4e2e-8e57-b576ca1264d3
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