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FE2(SO4)3 and Bentonite Use to Reduce Cod Indicators in Wastewater Containing Detergents

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Wastewater pollution with detergents is one of the environmental problems associated with the rational use of water resources. The existing methods of physicochemical wastewater treatment, despite their efficiency, are open to secondary environmental pollution. Biological coagulation/flocculation methods are widely used with the plant waste. The aim of this research was the use of ferric iron obtained by means of the bacterial-chemical method and bentonite to reduce the chemical oxygen demand in the wastewater containing detergents. It was identified that the use of Fe2 (SO4)3 obtained using the bacterial-chemical method with thionic bacteria Acidithiobacillus ferrooxidans BIT 1 and bentonite as a clay material is promising. At the same time, it was found that the highest reduction degree in the chemical oxygen demand – 88.1 ± 7.9% in wastewater was noted in the variation where the bacterial-chemical ferric iron in the amount of 1.75 g/L was used in combination with bentonite in the amount of 600 mg/L.
Słowa kluczowe
Rocznik
Strony
68--73
Opis fizyczny
Bibliogr. 19 poz., rys., tab.
Twórcy
  • Shymkent University, Zhybek Zholy St 131, Shymkent 160031, Kazachstan
  • South Kazakhstan University named after M. Auezov, Tauke Khan Avenue, 5, Shymkent, Kazakhstan
  • South Kazakhstan University named after M. Auezov, Tauke Khan Avenue, 5, Shymkent, Kazakhstan
  • South Kazakhstan University named after M. Auezov, Tauke Khan Avenue, 5, Shymkent, Kazakhstan
  • South Kazakhstan University named after M. Auezov, Tauke Khan Avenue, 5, Shymkent, Kazakhstan
  • South Kazakhstan University named after M. Auezov, Tauke Khan Avenue, 5, Shymkent, Kazakhstan
  • A. Mickiewicz Poznań State University, Wieniawskiego 1, 61-712 Poznań, Poland
Bibliografia
  • 1. Abdulkareem L., Al-sareji O.J., Obaid Z., Abdulhusain N., Satyi S. 2020. Removal of COD and TOC from domestic wastewater by using alum and peels of sunflowers seeds as natural coagulant. Eurasian Journal of Bio Sciences, 14, 2011–2014.
  • 2. Ahmad H., Lafi W., Abushgair K., Assbeihat J.M. 2016. Electrocoagulation and Biological Techniques for the Municipal Wastewater Treatment. Int. Journal of Appl. Eng. Res., 11, 11014–11024.
  • 3. Altaher, Hossam, Qada, Emad, Omar, Waid. 2011. Pretreatment of wastewater streams from petroleum/petrochemical industries using coagulation. Advances in Chemical Engineering and Science, 1, 245–251.
  • 4. Ayguna A., Yilmazb T. 2010. Improvement of coagulation-flocculation process for treatment of detergent wastewaters using coagulant aids. International Journal of Chemistry and Environmental Engineering, December, 97–101.
  • 5. Azli F., Azoddein A., Abu Seman M.N., Hamid A., Tajuddin T., Nurdin S. 2020. Treatment of Petroleum-Based Industrial Wastewater Using Electrocoagulation Technology. Advances in Waste Processing Technology. Springer Nature Singapore: Pte Ltd, 49–59.
  • 6. Bhairi S.M., Mohan C. 2007. Detergents: A guide to the properties and uses of detergents in biological systems. In: EMD Biosciences; 20–21 November; San Diego, CA, 43.
  • 7. Demirci S., Erdogan B., Ozcimder R. 1998. Wastewater treatment at the petroleum refinery, Kirikkale, Turkey Using Some Coagulants And Turkish Clays As Coagulant Aids. Water Research, October, 3495–1499.
  • 8. El-Batrawy O., El-Sonbati M., El-Awadly E., Hegazy T. 2020. Study on ferric chloride coagulation process and fenton’s reaction for pretreatment of dairy wastewater. International Current Science, 10, 366–370.
  • 9. Farizoglu B., Uzuner S. 2011. The investigation of dairy industry wastewater treatment in a biological high performance membrane system. Biochemical Engineering Journal, 10, 1016–1021.
  • 10. Gu L.Y., Wang N., Zhu D., Zhang S., Huang H., Yuan Z., Wang M. 2013. Preparation of sewage sludge based activated carbon by using fenton’s reagent and their use in 2-naphthol adsorption. Bioresour. Technol., 146, 779–784.
  • 11. Issayeva A.U., Bishimbayev V.K., Uspabayeva A.A., Taskarayeva A.A., Bishimbayev K.V. 2011. Method for biological wastewater treatment. Innovation Patent, 24863, 11.
  • 12. Kamble P., Pandit A. 2020. Significant study of effect of aeration intensities on membrane bioreactor performance. International Journal of Scientific and Research Publications, 11, 203–209.
  • 13. Khongnakorn W., Wisniewski C., Pottier L., Vachoud L. 2007. Physical properties of activated sludge in a submerged membrane bioreactor and relation with membrane fouling. Purif. Tech., September; 125–131.
  • 14. Loloei M.H., Alidadi G., Nekonam K., Kor Y. 2019. Study of the coagulation process in wastewater treatment of dairy industries. International Journal of Environmental Health Engineering, 2, 17–21.
  • 15. Ostovar F., Abedinzadeh N., Pourkarim S., Mirblooki H., Yazdi M. 2021. Desalination and water treatment combination of coagulation and oxidation processes for treatment of real fish canning wastewater. International Current Science, 10, 203–207.
  • 16. Roy C.K., Jahan M.A., Rahman S.S. 2018. Characterization and Treatment of Textile Wastewater byAquatic Plants (Macrophytes) and Algae. European Journal of Sustainable Development Research, 2, 29–30.
  • 17. Saravanan J., Priyadharshini D., Soundammal A., Sudha G., Suriyakala K. 2017. Wastewater Treatment using Natural Coagulants. International Journal of Civil Engineering, 4, 40–42.
  • 18. Slavov A.K. 2017. Wastewaters general characteristics and treatment possibilities. Food Technology and Biotechnology, 10, 17113–17120.
  • 19. Suman A.T., Ahmad K. 2017. Dairy wastewater treatment using water treatment sludge as coagulant: a novel treatment approach. Environ. Dev. Sustain., 10, 100–113.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-2562a649-af08-4d3e-b100-c178a8ea01f8
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