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Proceedings of the National Academy of Sciences of Belarus. Physical-technical series

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On the calculation of droplet charging during corona discharge in the chamber of air ionic treatment of organic materials

https://doi.org/10.29235/1561-8358-2025-70-1-37-43

Abstract

A mathematical model is presented in the drift-diffusion approximation, which describes the transport of charged particles in the air under the action of a corona discharge, as well as a change in the surface charge of droplets in a droplet-air environment. This model allows us to calculate the dynamics of charge transmission to droplets of organic materials during their aeroion treatment, taking into account the heterogeneity of the electric field of the corona discharge. An inhomogeneous electric field is created when an electric voltage is applied between needle-type electrodes and the inner surface of the chamber for aeroion treatment of organic materials. It has been experimentally shown that the electric charge of nutrient medium and yeast cell molecules in a drop affects the diffusion of nutrients into the cell and, as a result, the development and productivity of yeast, which increases by 12–17 % compared with the use of methods not related to aeroion treatment of organic materials. The conducted experimental studies indicate the possibility of using the model to design real aeroion treatment chambers in order to optimize their operation.

About the Authors

M. V. Yanko
Belarusian State Agrarian Technical University
Belarus

Maxim V. Yanko – Master of Engineering Sciences, Senior Lecturer

99, Nezavisimosti Ave., 220012, Minsk



A. D. Chorny
A. V. Luikov Heat and Mass Transfer Institute of the National Academy of Science of Belarus
Belarus

Andrei D. Chorny  – Cand. Sci. (Physics and Mathematics), Associate Professor, Head of the Laboratory 

15, P. Brovka St., 220072, Minsk



Ya. M. Zayats
Belarusian State Agrarian Technical University
Belarus

Yauheni M. Zayats – Dr. Sci. (Engineering), Professor, Professor

99, Nezavisimosti Ave., 220012, Minsk



References

1. Zhakin A. I. Electrohydrodynamics. Physics–Uspekhi, 2012, vol. 55, iss. 5, pp. 465–488. https://doi.org/10.3367/UFNr.0182.201205b.0495

2. Iranshahi K., Defraeye T., Rossi R. M., Müller U. C. Electrohydrodynamics and its applications: Recent advances and future perspectives. International Journal of Heat and Mass Transfer, 2024, vol. 232, art. ID 125895. https://doi.org/10.1016/j.ijheatmasstransfer.2024.125895.

3. Beretta G., Mastorgio A. F., Pedrali L., Saponaro S., Sezenna E. The effects of electric, magnetic and electromagnetic fields on microorganisms in the perspective of bioremediation. Reviews in Environmental Science and Bio/Technology, 2019, vol. 18, pp. 29–75. https://doi.org/10.1007/s11157-018-09491-9

4. Palaniappan S., Sastry S. K., Richter E. R. Effects of Electricity on Microorganisms: A Review. Journal of Food Processing and Preservation, 1990, vol. 14, iss. 5, pp. 393–414. https://doi.org/10.1111/j.1745-4549.1990.tb00142.x

5. Manjila Adhikari, Li Wang, Dhurba Adhikari, Sujan Khadka, Mati Ullah, Bricard Mbituyimana, Clemence Futila Bukatuka, Zhijun Shi, Guang Yang. Electric stimulation: a versatile manipulation technique mediated microbial applications, Bioprocess and Biosystems Engineering, 2024, vol. 48, iss. 2, pp. 171–192. https://doi.org/10.1007/s00449-024-03107-z

6. Stishkov Yu. K., Samusenko A. V., Ashikhmin I. A. Corona discharge and electrogasdynamic flows in the air. Physics–Uspekhi, 2018, vol. 61, iss. 12, pp. 1331–1345. https://doi.org/10.3367/UFNr.2018.06.038358

7. Asipuela A., Iváncsy T. Study and Numerical Simulation of Negative and Positive Corona Discharge: A Review. Periodica Polytechnica Electrical Engineering and Computer Science, 2022, vol. 66, iss. 3, pp. 294–300. https://doi.org/10.3311/PPee.19952

8. Ashutosh Singh, Orsat V., Vijaya Raghavan. A Comprehensive Review on Electrohydrodynamic Drying and HighVoltage Electric Field in the Context of Food and Bioprocessing. Drying Technology, 2012, vol. 30, iss. 16: Special Issue to Celebrate the 60th Birthday of Prof. Soponronnarit, pp. 1812–1820. http://doi.org/10.1080/07373937.2012.708912

9. Burak L. Ch. Using Ozone Technology in the Food Industry. Minsk, StroyMediaProekt Publ., 2022. 144 p. (in Russian).

10. Zayats Ya., Chorny A. Practical Electrotechnology. Cambridge Scholars Publishing, UK, 2023. 334 p.

11. Luo S., Sun H., Ping Q., Jin R., He Z. A review of modeling bioelectrochemical systems: engineering and statistical aspects. Energies, 2016, vol. 9, iss. 2, pp. 1–27. https://doi.org/10.3390/en9020111

12. Yanko M. V., Zayats Ya. M. Aeroionic activation of some microbiological processes. Agropanorama, 2019, no. 1 (131), pp. 28–29 (in Russian).


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ISSN 1561-8358 (Print)
ISSN 2524-244X (Online)