Plasma Aerodynamics and Flow Control by Superfast Local Heating

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Pulsed Discharge Plasmas

Abstract

This chapter presents a review of modern works on gasdynamic flow control using a highly nonequilibrium pulsed plasma. The main attention is paid to the effects based on ultrafast (on the nanosecond time scale for atmospheric pressure) local gas heating, since, at present, the main successes in controlling high-speed flows by means of gas discharges are associated with this thermal mechanism. Much attention is paid to the physical mechanisms responsible for the interaction of the discharge with gas flows. The chapter outlines the most popular approaches for pulsed energy deposition in plasma aerodynamics: nanosecond surface barrier discharges, pulsed spark discharges, and femto- and nanosecond optical discharges. The mechanisms of ultrafast heating of air at high electric fields realized in these discharges, as well as during the decay of the discharge plasma, are separately analyzed. Numerous examples of plasma-assisted control of gasdynamic flows are discussed. It considers control of the configuration of shock waves in front of a supersonic object, control of its trajectory, control of quasi-stationary separated flows and layers, control of a laminar–turbulent transition, and control of static and dynamic separation of the boundary layer at high angles of attack.

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Abbreviations

x/c :

Dimensionless coordinate along the wing chord

\({\overline{U} }^{*}\) :

Dimensionless averaged local velocity, \(\overline{U }/{U}_{\infty }\)

F c + :

Dimensionless excitation force frequency, Ff c/U

T* :

Dimensionless convection time, t U/c

C P :

Pressure coefficient

C L :

Lift coefficient

C M :

Pitching moment coefficient

C D :

Drag coefficient

U :

Instantaneous local velocity

V :

Discharge voltage

n :

Gas density

\({n}_{i}\) :

Ion density

\({n}_{e}\) :

Electron density

γ :

Specific heat ratio, Cp/Cv

E B :

Breakdown electric field

E/n :

Reduced electric field

k :

Reduced pitch frequency, πfc/U

U S :

Speed of sound

U :

Free stream flow velocity

ν c :

Frequency of transport collisions of electrons

α :

Angle of attack

\(\overline{U }\) :

Averaged local velocity

c :

Wing chord

F :

Frequency

F f :

Excitation force frequency

ω :

Laser frequency

f :

Pitching frequency

\({\nu }_{\varepsilon }\) :

Frequency of electron energy relaxation

Ω :

Frequency of the electromagnetic field

M :

Mach number, U/US

Re c :

Chord Reynolds number, U c/ν

St :

Strouhal number, F c/U

E :

Electric field

ω pe :

Electron plasma frequency

ns-SDBD:

Nanosecond surface dielectric barrier discharge

AC-SDBD:

Alternating current surface dielectric barrier discharge

\({T}_{e}\) :

Effective electron temperature

E eff :

Effective electric field

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Starikovskiy, A.Y., Aleksandrov, N.L. (2023). Plasma Aerodynamics and Flow Control by Superfast Local Heating. In: Shao, T., Zhang, C. (eds) Pulsed Discharge Plasmas. Springer Series in Plasma Science and Technology. Springer, Singapore. https://doi.org/10.1007/978-981-99-1141-7_35

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