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In this study, a new reactor concept was designed for combining the advantages of anaerobic baffled reactors and biofilm reactors for treating dairy wastewater. The magneto-active microporous packing media manufactured by extrusion technology and modified by the addition of relevant amounts of metal catalysts and magnetic activation were used. The effects of active packing media placing in the different functional areas (hydrolysis or methanogenic) on the reactor performance (organic matter and nutrients removal, biogas production) were studied. The highest biogas production of 337 L/d and biogas yield of 415 mL/g CODremoved were achieved when the packing media with magnetic properties were placed in the methanogenic tanks. A stimulatory effect of placing the active packing media in methanogenic tanks on the organic matter removal (86% as COD) and suspended solids elimination from wastewater were noted; however, the magnetic properties did not contribute towards higher organic matter and nutrients removal. Incorporation of metals into the plastic packing media enhanced the phosphorus removal (85–87%).
Czasopismo
Rocznik
Tom
Strony
165--171
Opis fizyczny
Bibliogr. 25 poz., rys.
Twórcy
autor
- University of Warmia and Mazury in Olsztyn, Department of Environmental Engineering, ul. Warszawska 117, 10-950 Olsztyn, Poland
autor
- University of Warmia and Mazury in Olsztyn, Department of Environmental Engineering, ul. Warszawska 117, 10-950 Olsztyn, Poland
autor
- University of Warmia and Mazury in Olsztyn, Department of Environmental Engineering, ul. Warszawska 117, 10-950 Olsztyn, Poland
autor
- University of Warmia and Mazury in Olsztyn, Department of Environmental Engineering, ul. Warszawska 117, 10-950 Olsztyn, Poland
Bibliografia
- 1. Dębowski M., Zieliński M., Krzemieniewski M., Brudniak A. 2014. Effect of magneto-active filling on the effectiveness of methane fermentation of dairy wastewaters. International Journal of Green Energy, doi.org/10.1080/15435075.2014.909362.
- 2. Gulhane M., Pandit P., Khardenavis A., Singh D., Purohit H. 2017. Study of microbial community plasticity for anaerobic digestion of vegetable waste in Anaerobic Baffled Reactor. Renewable Energy, 101, 59–66.
- 3. Hawkes F.R., Donnelly T., Anderson G.K. 1995. Comparative performance of anaerobic digesters operating on ice-cream wastewater. Water Research, 29, 525–533.
- 4. Jędrzejewska-Cicińska M., Krzemieniewski M. 2010. Effect of corrosion of steel elements on the treatment of dairy wastewater in a UASB reactor. Environmental Technology, 31, 585–589.
- 5. Ji Y., Wang Y., Sun J., Yan T., Li J., Zhao T., Yin X., Sun C. 2010. Enhancement of biological treatment of wastewater by magnetic field. Bioresource Technology, 101, 8535–8540.
- 6. Karadag D., Köroğlu O.E., Ozkaya B., Cakmakci M. 2015. A review on anaerobic biofilm reactors for the treatment of dairy industry wastewater. Process Biochemistry, 50, 262–271.
- 7. Karri S., Sierra-Alvarez R., Field J.A. 2005. Zero valent iron as an electron-donor for methanogenesis and sulfate reduction in anaerobic sludge. Biotechnology and Bioengineering, 92, 810–819.
- 8. Krzemieniewski M., Dębowski M., Janczukowicz W., Pesta J. 2004. Effect of the Constant Magnetic Field on the Composition of Dairy Wastewater and Domestic Sewage. Polish Journal of Environmental Studies, 13, 45–53.
- 9. Kundu K., Bergmann I., Hahnke S., Klocke M., Sharma S., Sreekrishnan T.R. 2013. Carbon source – A strong determinant of microbial community structure and performance of an anaerobic reactor. Journal of Biotechnology, 168, 616–624.
- 10. Liu Y., Wang Q., Zhang Y., Ni B.J. 2015. Zero valent iron significantly enhances methane production from waste activated sludge by improving biochemical methane potential rather than hydrolysis rate. Scientific Reports, 5, 8263.
- 11. Noubactep C. 2008. A critical review on the process of contaminant removal in Fe0-H2O systems. Environmental Technology, 29, 909–920.
- 12. Plumb J.J., Bell J., Stuckey D.C. 2001. Microbial Populations Associated with Treatment of an Industrial Dye Effluent in an Anaerobic Baffled Reactor. Applied and Environmental Microbiology, 67, 3226–3235.
- 13. Qureshi N., Annous B.A., Ezeji T.C., Karcher P., Maddox I.S. 2005. Biofilm reactors for industrial bioconversion processes: employing potential of enhanced reaction rates. Microbial Cell Factories, 4, 24.
- 14. Rajagopal R., Saady N.M.C., Torrijos M., Thanikal J.V., Hung Y.T. 2013. Sustainable Agro-Food Industrial Wastewater Treatment Using High Rate Anaerobic Process. Water, 5, 292–311.
- 15. Rajinikanth R., Ganesh R., Escudie R., Mehrotra I., Kumar P., Thanikal J.V., Torrijos M. 2009. High rate anaerobic filter with floating supports for the treatment of effluents from small-scale agro-food industries. Desalination and Water Treatment, 4, 183–190.
- 16. Reynaud N., Buckley C.A. 2016. The anaerobic baffled reactor (ABR) treating communal wastewater under mesophilic conditions: a review. Water Science Technology, 73, 463–478.
- 17. Rodgers M., Zhan X.M., Dolan B. 2004. Mixing characteristics and whey wastewater treatment of a novel moving anaerobic biofilm reactor. Journal of Environmental Science and Health Part A: Toxic/ hazardous Substances & Environmental Engineering, 39, 2183–2193.
- 18. Shi R., Xu H., Zhang Y. 2011. Enhanced treatment of wastewater from the vitamin C biosynthesis industry using a UASB reactor supplemented with zero-valent iron. Environmental Technology, 32, 1859–1865.
- 19. Slavov A.K. 2017. General Characteristics and Treatment Possibilities of Dairy Wastewater – A Review. Food Technology and Biotechnology, 55, 14–28.
- 20. Tiwary A., Williams I.D., Pant D.C., Kishore V.V.N. 2015. Emerging perspectives on environmental burden minimisation initiatives from anaerobic digestion technologies for community scale biomass valorization. Renewable and Sustainable Energy Reviews, 42, 883–901.
- 21. Venkiteshwaran K., Bocher B., Maki J., Zitomer D. 2015. Relating Anaerobic Digestion Microbial Community and Process Function. Microbiology Insights, 8, 37–44.
- 22. Wu D., Zheng S., Ding A., Sun G., Yang M. 2015. Performance of a zero valent iron-based anaerobic system in swine wastewater treatment. Journal of Hazardous Materials, 286, 1–6.
- 23. Zaidi N.S., Sohaili J., Muda K., Sillanpää M. 2014. Magnetic field application and its potential in water and wastewater treatment systems. Separation & Purification, 43, 206–240.
- 24. Zhang Y., Jing Y., Quan X., Liu Y., Onu P. 2011. A Built-In Zero Valent Iron Anaerobic Reactor to Enhance Treatment of Azo Dye Wastewater. Water Science and Technology, 63, 741–746.
- 25. Zieliński M., Dębowski M., Krzemieniewski M., Dudek M., Grala A. 2014. Effect of the constant magnetic field (CMF) with various values of magnetic induction on the effectiveness of dairy wastewaters treatment under anaerobic conditions. Polish Journal of Environmental Studies, 23, 255–261.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-65d0a283-9c6c-4fee-9ede-380418846e71