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Analysis of Electrical Signals Exciting LowTemperature Atmospheric Plasma of Dielectric Barrier Discharge

https://doi.org/10.35596/1729-7648-2025-23-2-44-52

Abstract

This paper presents the results of analyzing the change in the nonlinear impedance of plasma in a dielectric barrier discharge. The volt-ampere characteristics of the plasma were obtained experimentally. The dependencies of their changes on the amplitude of the excitation voltage in the generator’s output circuit, the flow rate of the inert gas, and the distance between the electrodes of the discharge system were determined.

About the Authors

A. N. Osipov
Belarusian State University of Informatics and Radioelectronics
Belarus

Anatoliy N. Osipov, Cand. Sci. (Tech.), Associate Professor, Head of   the   Sectoral   Laboratory   at   the   Center for “Devices, Systems and Technologies for Medical Purposes”

220013, Minsk, P. Brovki St., 6 



Т. Ma
Belarusian State University of Informatics and Radioelectronics
Belarus

Postgraduate at the Department of Electronic Engineering and Technologies

Minsk



V. A. Rokach
Belarusian State University of Informatics and Radioelectronics
Belarus

Postgraduate   at   the   Department of Electronic Engineering and Technologies

Minsk



References

1. Adamovich I., Agarwal S., Ahedo E., Alves L. L., Baalrud S., Babaeva N., et al. (2022) The 2022 Plasma Roadmap: Low Temperature Plasma Science and Technology. Journal of Physics D: Applied Physics. 55 (373001). https://iopscience.iop.org/article/10.1088/1361-6463/ac5e1c#dac5e1cs11.

2. Slutsker Ya. Z., Semenov V. E., Krasik Ya. E., Ryzhkov M. A., Felsteiner J., Binenbaum Y., et al. (2017) Electrical Model of Cold Atmospheric Plasma Gun. Physics of Plasmas. 24 (10). https://doi.org/10.1063/1.4986023.

3. Nadolsky A. N. (2005) Theoretical Foundations of Radiotechnics. Minsk (in Russian).

4. Tuyev V. I. (2020) Designing Radioelectronic Systems by Nonlinearity Criteria. Tomsk, Publishing House of Tomsk State University of Control Systems and Radioelectronics (in Russian).

5. Tianbao Mа, Kalenkovich Ya., Rokach V., Osipov A. (2025) Generation of Low-Temperature Plasma by Pulse-Width Modulated Signals and Monitoring of Their Interaction with Object Surfaces. Plasma Science and Technology. 27 (1).

6. Osipov A. N., Kotov D. A. (2006) Method for Diagnosing Dielectric Barrier Discharge Plasma. Eurasian Patent 045560, IPC, H05H 1/00, Applicant and Patent Holder Belarusian State University of Informatics and Radioelectronics. No 202390454; Declared 31.01.2023; Published 05.12.2023 (in Russian).

7. Osipov A. N. (2006) Device for Measuring Current in a High-Voltage Circuit. Eurasian Patent 042096, IPC, G01R 19/06, Applicant and Patent Holder EI Belarusian State University of Informatics and Radioelectronics. No 202291076; Declared 28.03.2022; Published 13.01.2023 (in Russian).

8. Krivosheev V. I. (2006) Modern Methods of Digital Signal Processing (Digital Spectral Analysis). Nizhny Novgorod, Nizhny Novgorod State University named after N. I. Lobachevsky (in Russian).


Review

For citations:


Osipov A.N., Ma Т., Rokach V.A. Analysis of Electrical Signals Exciting LowTemperature Atmospheric Plasma of Dielectric Barrier Discharge. Doklady BGUIR. 2025;23(2):44-52. (In Russ.) https://doi.org/10.35596/1729-7648-2025-23-2-44-52

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ISSN 1729-7648 (Print)
ISSN 2708-0382 (Online)