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Modelling of sequencing batch reactor operating at various aeration modes

Abstract

The presented study involved designing a computer model of a sequencing batch reactor (SBR) at laboratory scale. The data pertaining to the technical aspects of the bioreactor and quality indicators of wastewater constituted the input for the employed simulation tool, i.e. GPS-X software package. The results of a simulation involving a 12-hour operation cycle are presented in this work; each cycle included 6 phases: filling, mixing, aeration, settling, decantation and idling (wasting of excess sludge). The simulations were carried out using two different modes of aeration. Concentration of dissolved oxygen (DO) was maintained at constant level of 2 mgO2/L using the PID controller in the first case. On the other hand, variation of DO concentration was employed in the aeration stage of the second variant, which was achieved using appropriately elaborated set point of oxygen concentration, considering the specific intervals in oxygen supply. The changes observed in DO concentration varied from 0.5 to 2.5 mgO2/L. This research proved that the second variant, involving variation of DO concentration, was characterised by reduced levels of pollution indicators in treated sewage, as well as lower consumption of electricity, both of which contributed towards improving the effluent quality and resulted in significant degree of dephosphatation.

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Category:
Articles
Type:
artykuły w czasopismach
Published in:
MATEC Web of Conferences no. 252,
ISSN: 2261-236X
Language:
English
Publication year:
2019
Bibliographic description:
Łagód G., Piotrowicz A., Gleń P., Drewnowski J., Sabba F.: Modelling of sequencing batch reactor operating at various aeration modes// MATEC Web of Conferences -Vol. 252, (2019), s.05013-
DOI:
Digital Object Identifier (open in new tab) 10.1051/matecconf/201925205013
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  1. D.J. Dürrenmatt, W. Gujer, Environ. Model. Softw. 30, 47-56, (2012) open in new tab
  2. G. Mannina, A. Cosenza, G. Viviani, Phys. Chem. Earth, 42-44, 61-69 (2012) open in new tab
  3. A. Cosenza, G. Mannina, P.A. Vanrolleghem, M.B. Neumann, Environ. Modell. Softw. 49, 40-52 (2013) open in new tab
  4. A. Kusiak, Y. Zeng, Z. Zhang, Eng. Appl. Artif. Intel. 26,1643-1651 (2013) open in new tab
  5. M. Pomiès, J.M. Choubert, C. Wisniewski, M. Coquery, Sci. Total Environ. 443, 733-748 (2013) open in new tab
  6. R. Barat, T. Montoya, A. Seco, J. Ferrer, Water Res. 45, 3744-3752 (2011) open in new tab
  7. E. Belia, P.G. Smith, Water Sci. Technol. 35(1), 19- 26 (1997) open in new tab
  8. C-H. Yoon, H-J. Yang, J-B. Seo, Y-T. Rim, J-R.
  9. Ryu, E-B. Shin, Water Sci. Technol. 35 (1), 241-247 (1997)
  10. I. Shizas, D.M. Bagley, Water Res. 36, 363-367 (2002) open in new tab
  11. Y.J. Chan, C.M. Fong, C.L. Law, J. Environ. Manage. 91, 8, 1738-1746 (2010) open in new tab
  12. A. Cydzik-Kwiatkowska, M.Zielińska, K. Bernat, I. Wojnowska-Baryła, New Biotech. 29, S183 (2012) open in new tab
  13. S. Lackner, H. Horn, Bioresour. Technol. 107, 70-77 (2012) open in new tab
  14. J. Bai, H. Xu, Y. Zhang, Z. Peng, G. Xu, Biochem. Eng. J. 70, 115-119 (2013) open in new tab
  15. D.A. Irvine, J.P. Earley, D.P. Cassidy, S.P. Harvey, Water Sci. Technol. 35, 1, 67-74 (1997) open in new tab
  16. S. Mace, J. Mata-Alvarez, Ind. Eng. Chem. Res. 41, 5539-5553 (2002) open in new tab
  17. N. Artan, D. Orhon, Mechanisms and design of sequencing batch reactors for nutrient removal (IWA Publishers, London, 2005). open in new tab
  18. A.H. Mahvi, Iran. J. Environ. Health Sci. Eng. 5, 2,79-90 (2008)
  19. Y.J. Chan, M.F. Chong, C.L Law,. D.G. Hassell, Chem. Eng. J. 155, 1-18 (2009) open in new tab
  20. L. Luccarini, G.L. Bragadin, G. Colombini, M. Mancini, P. Mello, M. Montali, D. Sottara, Environ. Modell. Softw. 25, 648-660 (2010) open in new tab
  21. EPA 625/R00/008, Onsite Wastewater Treatment Systems Manual: Sequencing Batch Reactor Systems (U.S. Environmental Protection Agency, 2002) open in new tab
  22. R. Babko, T. Kuzmina, K. Jaromin-Gleń, A. Bieganowski, Ecol. Chem. Eng. S 21, 4, 605-616 (2014) open in new tab
  23. R. Babko, K. Jaromin-Gleń, G. Łagód, M. Pawłowska, A. Pawłowski, Des. Water Treat. 57, 3, 1490-1498 (2016) open in new tab
  24. A. Szaja, G. Łagód, K. Jaromin-Gleń, A. Montusiewicz, Water 10, 5 (2018) open in new tab
  25. J. Malicki, A. Montusiewicz, A. Bieganowski, Water Res. 35/9, 2333-2335 (2001) open in new tab
  26. E. Neczaj, M. Kacprzak, J. Lach, E. Okoniewska, Desalination 204, 227-233 (2007) open in new tab
  27. E.S. Elmolla, M. Chaudhuri, Desalination, 285, 14- 21 (2012) open in new tab
  28. X. Quan, M. Zhang, P.G. Lawlor, Z. Yang, X. Zhan, Water Res. 46, 4981-4990 (2012) open in new tab
  29. C. Li, S. Liang, J. Zhang, H.H. Ngo, W. Guo, N. Zheng, Y. Zou, Chem. Eng. J. 222, 353-360 (2013) open in new tab
  30. M. Zubrowska-Sudol, J. Walczak, Water Res. 61, 200-209 (2014) open in new tab
  31. Ł. Guz, G. Łagód, K. Jaromin-Gleń, Z. Suchorab, H. Sobczuk, A. Bieganowski, Sensors. 15, 1-21 (2015) open in new tab
  32. K. Sytek-Szmeichel, J. Podedworna, M. Zubrowska- Sudol, Water Sci. Technol. 73, 6, 1349-1356 (2016) open in new tab
  33. E. Lobos-Moysa, M. Dudziak, M. Bodzek, Ochr. Sr. 32, 2, 53-56 (2010) open in new tab
  34. S. Waclawek, K. Grubel, Z. Chlad, M. Dudziak, M. Cernik, Water Environ. Res. 88(2), 152-157 (2016) open in new tab
  35. S. Werle, M. Dudziak, K. Grubel, J. Environ. Sci. Health Part A-Toxic/Hazard. Subst. Environ. Eng. 51(9), 754-758 (2016) open in new tab
  36. K. Piaskowski, Rocz. Ochr. Środ. 5, 221-237 (2003)
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