Excitation of Stationary Cross-Flow Instability Modes Using a Plasma Actuator Based on Dielectric Barrier Discharge
- Autores: Kotvitsky A.Y.1, Moralev I.A.1, Ustinov M.V.2, Abdullaev A.A.3
 - 
							Afiliações: 
							
- Joint Institute for High Temperatures, Russian Academy of Sciences
 - Central Aerohydrodynamic Institute
 - Moscow Institute of Physics and Technology
 
 - Edição: Volume 61, Nº 6 (2023)
 - Páginas: 830-835
 - Seção: Исследование плазмы
 - URL: https://vietnamjournal.ru/0040-3644/article/view/653046
 - DOI: https://doi.org/10.31857/S004036442306008X
 - ID: 653046
 
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Resumo
The article presents the results of studying the stationary mode of cross-flow instability excited by a plasma actuator based on dielectric barrier discharge in a three-dimensional boundary layer on a swept plate with an induced pressure gradient. It is shown that the actuator generates an instability mode of a given wavelength with an initial amplitude of up to 2% of the free-stream velocity, while the signal-to-noise ratio is no greater than 15%. As a result of a parametric study, a family of growth curves of the excited instability mode was obtained as a function of the parameters of the voltage supplying the discharge. It is shown that the initial amplitude of stationary cross-flow vortices generated by the actuator in the studied range of parameters depends quadratically on the overvoltage at the electrodes and linearly on frequency, which coincides with a similar dependence for the actuator thrust.
Sobre autores
A. Kotvitsky
Joint Institute for High Temperatures, Russian Academy of Sciences
														Email: alex.kotvitsky00@gmail.com
				                					                																			                												                								Moscow, Russia						
I. Moralev
Joint Institute for High Temperatures, Russian Academy of Sciences
														Email: alex.kotvitsky00@gmail.com
				                					                																			                												                								Moscow, Russia						
M. Ustinov
Central Aerohydrodynamic Institute
														Email: alex.kotvitsky00@gmail.com
				                					                																			                												                								Zhukovsky, Russia						
A. Abdullaev
Moscow Institute of Physics and Technology
							Autor responsável pela correspondência
							Email: alex.kotvitsky00@gmail.com
				                					                																			                												                								Dolgoprudny, Russia						
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