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Article

Impact of a Near-Surface Plasma Region on the Bow Shock Wave and Aerodynamic Characteristics of a High-Speed Model in Xenon

by
Olga A. Azarova
1,*,
Tatiana A. Lapushkina
1,2 and
Oleg V. Kravchenko
1
1
Federal Research Center “Computer Science and Control” of the Russian Academy of Sciences, Vavilova Str. 44, Moscow 119333, Russia
2
Ioffe Institute, Politekhnicheskaya Str. 26, St. Petersburg 194021, Russia
*
Author to whom correspondence should be addressed.
Fluids 2024, 9(12), 277; https://doi.org/10.3390/fluids9120277
Submission received: 14 October 2024 / Revised: 19 November 2024 / Accepted: 21 November 2024 / Published: 23 November 2024
(This article belongs to the Special Issue High Speed Flows, 2nd Edition)

Abstract

The main objective of this study is to demonstrate the active influence on the location of the bow shock wave, as well as on the parameters of an aerodynamic body, of a gas discharge organized near the frontal surface, between the body and the bow shock wave. The research is carried out using both experimental and numerical methods at the freestream Mach number M = 6.8. The working gas is xenon. It is shown that the location of the steady bow shock wave, along with the current and power of the discharge, is associated with the change in the adiabatic index of the plasma created by the discharge, which, in turn, is determined by plasma parameters such as the degrees of nonequilibrium and the degree of ionization. It is shown that the adiabatic index with the power supplied to the impact zone in the range of 30–120 kW can both increase and decrease in the range of 1.25–1.288. A study of the discharge-created plasma zone is conducted, and the correspondence between the gas discharge current and power and the average parameters in the plasma zone created by the discharge are presented. A good agreement between the numerical and experimental data is shown. The results obtained can be useful in the development of control systems for high-speed flows based not only on the effects of heating but also on the impact of plasma parameters.
Keywords: supersonic flow; bow shock wave control; near-surface energy deposition; gas discharge; discharge plasma parameters; drag force control supersonic flow; bow shock wave control; near-surface energy deposition; gas discharge; discharge plasma parameters; drag force control

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MDPI and ACS Style

Azarova, O.A.; Lapushkina, T.A.; Kravchenko, O.V. Impact of a Near-Surface Plasma Region on the Bow Shock Wave and Aerodynamic Characteristics of a High-Speed Model in Xenon. Fluids 2024, 9, 277. https://doi.org/10.3390/fluids9120277

AMA Style

Azarova OA, Lapushkina TA, Kravchenko OV. Impact of a Near-Surface Plasma Region on the Bow Shock Wave and Aerodynamic Characteristics of a High-Speed Model in Xenon. Fluids. 2024; 9(12):277. https://doi.org/10.3390/fluids9120277

Chicago/Turabian Style

Azarova, Olga A., Tatiana A. Lapushkina, and Oleg V. Kravchenko. 2024. "Impact of a Near-Surface Plasma Region on the Bow Shock Wave and Aerodynamic Characteristics of a High-Speed Model in Xenon" Fluids 9, no. 12: 277. https://doi.org/10.3390/fluids9120277

APA Style

Azarova, O. A., Lapushkina, T. A., & Kravchenko, O. V. (2024). Impact of a Near-Surface Plasma Region on the Bow Shock Wave and Aerodynamic Characteristics of a High-Speed Model in Xenon. Fluids, 9(12), 277. https://doi.org/10.3390/fluids9120277

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