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Forecasting regeneration parameters of free-floating biocarriers in an aeration tank

https://doi.org/10.21285/2227-2917-2023-4-635-644

EDN: LTVXBN

Abstract

A mathematical model was developed to describe the efficiency of air regeneration used for immobilised biofilm on free-floating biocarriers “FB Bio-850”. For this purpose, a physical model of an aeration tank bioreactor was developed, forming the basis for this study. The use of biocarriers contributes to decreasing the concentration of water pollutants that pose a threat to humans and the environment when released into the surface or groundwater without adequate treatment. This increases the efficiency of the aeration tanks, accelerates the oxidation of pollutants and ensures high-quality water purification. In addition, biocarriers increase the performance of the biological treatment plant, promote the resilience of biological structures to abrupt discharges of pollutants and facilitate the nitrification process. Carrying out such studies on an industrial aerated facility poses significant technical challenges. The model aerated tank and the experimental setup provided the flexibility to vary the intensity of the air medium-bubble regeneration for free-floating biocarriers, regeneration time, and the specific gravity of the biocarriers across a broad range, along with controlling the concentration of free-floating sludge. The correlation between the efficiency of regeneration of the plastic carriers “FB Bio-850” and the following technical parameters was established, including the regeneration time of the biocarriers, the loading mass and the intensity of the fine bubble aeration of the water-sludge mixture. A mathematical model of the efficiency of air regeneration was developed, reflecting the influence of all the above parameters. The obtained predictive matrix for efficiency values was used to develop a geometric model of the efficiency surface. This model provides an optimal selection of technological parameters for air regeneration of immobilised biofilm in a biological wastewater treatment aeration tank bioreactor, ensuring a sufficiently high regeneration efficiency.

About the Authors

V. N. Kulkov
Irkutsk National Research Technical University
Russian Federation

Victor N. Kulkov, Dr. Sci. (Eng.), Professor, Professor of the Department of Urban Construction and Economy

83 Lermontov St., Irkutsk 664074

Author ID: 730720



E. Yu. Solopanov
Irkutsk National Research Technical University
Russian Federation

Evgenii Yu. Solopanov, Cand. Sci (Eng.), Associate  Professor of the Department of Applied Mathematics and  Computer Science

83 Lermontov St., Irkutsk 664074

Author ID: 518365



V. I. Dudarev
Irkutsk National Research Technical University
Russian Federation

Vladimir I. Dudarev, Dr. Sci. (Eng.), Professor, Professor of  the Department of Chemistry and Biotechnology named  after V.V. Tuturina

83 Lermontov St., Irkutsk 664074

Author ID: 676659



A. K. Mainovskaya
Irkutsk National Research Technical University
Russian Federation

Arina K. Mainovskaya, Specialist in Educational and  Methodological Work of the Department of Urban  Construction and Management

83 Lermontov St., Irkutsk 664074

Author ID: 1211009



References

1. Zhmur N.S. Technological and biochemical processes for wastewater treatment at facilities with aerotanks. Moscow: Akvaros Publ.; 2003. 512 p. (In Russ.).

2. Shvetsov V.N., Morozova K.M., Smirnova I.I., Semenov M.Yu., Lezhnev M.L., Ryzhakov G.G., et al. The use of bioblocks at wastewater treatment facilities. Vodosnabzhenie i sanitarnaya tekhnika = Water supply and sanitary technique. 2010;10:25-31. (In Russ.). EDN: MVREYB.

3. Shvetsov V.N., Morozova K.M., Smirnova I.I., Semenov M.Yu., Lezhnev M.L., Ryzhakov G.G., et al. Technological efficiency of biomedia produced by Tekhvodpolimer Co. Ltd. Vodosnabzhenie i sanitarnayatekhnika = Water Supply and Sanitary Technique. 2007;2:33-40. (In Russ.). EDN: HYKXWX.

4. Ferrera I., Sánchez O. Insights into microbial diversity in wastewater treatment systems: how far have we come? Biotechnology Advances. 2016;34(5):790-802. https://doi.org/10.1016/j.biotechadv.2016.04.003.

5. Kulkov V.N., Solopanov E.Yu. Water-air regeneration of a synthetic brush loading located in an aerotank. Irkutsk: Irkutsk National Research Technical University; 2020. 162 p. (In Russ.).

6. Markevich R.M., Grebenchikova I.A., Rodenko A.V., Vostrova R.N. Special properties of free-floating and immobililized active sludge biotic community. Trudy BGTU. № 4. Khimiya, tekhnologiya organicheskikh veshchestv i biotekhnologiya = Proceedings of BSTU. № 4. Chemistry, organic substances technology and biotechnology. 2013;4:219-223. (In Russ.). EDN: SOBOLV.

7. Kulikov N.I., Naimanov A.I., Omelchenko N.P., Chernyshov V.N. Theoretical based water purification. Makeyevka: Donbass National Academy of Construction and Architecture; 2009. 298 p. (In Russ.).

8. Hamza R.A., Sheng Zh., TernaIorhemen O., Zaghloul M.Sh., Tay J.H. Impact of food-to-microorganisms ratio on the stability of aerobic granular sludge treating high-strength organic wastewater. Water research. 2018;147:287-298. https://doi.org/10.1016/j.watres.2018.09.061.

9. Kulkov V.N., Solopanov E.Yu., Evteeva I.V., Razum A.S. Gas and hydrodynamic condition and distribution of active silt in the installations of biological cleaning of sewages. Vestnik Irkutskogo gosudarstvennogo tekhnicheskogo universiteta = Proceedings of Irkutsk state technical university. 2008;4:48-52. (In Russ.). EDN: JWXIVV.

10. Kulkov V.N., Solopanov E.Iu. Assessment of effectiveness of regeneration of synthetic loading in a bioreactor. Izvestiya vuzov. Investitsii. Stroitel'stvo. Nedvizhimost' = Proceedings of Universities. Investment. Construction. Real estate. 2016;3:77-84. https://doi.org/10.21285/2227-2917-2016-3-77-84. (In Russ.). EDN: WMNBBZ.

11. Martí-Calatayud M.C., Schneider S., Yüce S., Wessling M. Interplay between physical cleaning, membrane pore size and fluid rheology during the evolution of fouling in membrane bioreactors. Water research. 2018;147:393-402. https://doi.org/10.1016/j.watres.2018.10.017.

12. Abdalla Kh.Z., Khafagy Kh. Upgrading of activated sludge systems using immobilized Nitrifiers in polymer pellets. International journal of scientific & engineering research. 2014;5(2):619-623.

13. Vertinskaya N.D. Multidimensional mathematical modeling of multifactor and multiparametric processes in multicomponent systems. Irkutsk: Irkutsk state technical university; 2001. 289 p. (In Russ.). EDN: KVGBTR.

14. Pervykh I.A., Zelenin A.M., Sosna V.M. Physical modeling of gas hydrodynamic conditions in continuous flow aeration tank. Vestnik Irkutskogo gosudarstvennogo universiteta = Proceedings of Irkutsk state technical university. 2013;8:89-92. (In Russ.). EDN: RASWZH.

15. Kulkov V.N., Solopanov E.Yu., Kudryavtseva E.V. Use of information technology of mathematical modeling the biological wastewater treatmen. Izvestiya vysshikh uchebnykh zavedenii. Stroitel'stvo = News of higher educational institutions. Construction. 2014;6:66-73. (In Russ.). EDN: SXHLPP.


Review

For citations:


Kulkov V.N., Solopanov E.Yu., Dudarev V.I., Mainovskaya A.K. Forecasting regeneration parameters of free-floating biocarriers in an aeration tank. Izvestiya vuzov. Investitsii. Stroitelstvo. Nedvizhimost. 2023;13(4):635-644. (In Russ.) https://doi.org/10.21285/2227-2917-2023-4-635-644. EDN: LTVXBN

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ISSN 2227-2917 (Print)
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