Modelling of a nanosecond surface discharge actuator

被引:162
作者
Unfer, T. [1 ]
Boeuf, J. P.
机构
[1] Univ Toulouse, F-31062 Toulouse 9, France
关键词
FLOW-CONTROL; AIR-FLOW; SIMULATION; NITROGEN;
D O I
10.1088/0022-3727/42/19/194017
中图分类号
O59 [应用物理学];
学科分类号
摘要
Surface dielectric barrier discharges (SDBDs) can modify the boundary layer of a flow and are studied as a possible means to control the flow over an airfoil. In SDBDs driven by sinusoidal voltages in the 1-10 kHz range, momentum is transferred from ions to the neutral gas, as in a corona discharge (ion wind), and the resulting electrohydrodynamic force can generate a flow of several ms(-1) in the boundary layer along the surface. In this paper we are interested in a different regime of SDBDs where nanosecond voltage pulses are applied between the electrodes. Recent experiments by the group of Starikovskii have demonstrated that such discharges are able to modify a flow although no significant ion wind can be detected. A two-dimensional self-consistent numerical model of the discharge and gas dynamics in conditions similar to those of these experiments has been developed. The model couples fluid discharge equations with compressible Navier-Stokes equations including momentum and thermal transfer from the plasma to the neutral gas. This is a difficult multi-scale problem and special care has been taken to accurately solve the equations over a large simulation domain and at a relatively low computational cost. The results show that under the conditions of the simulated experiments, fast gas heating takes place in the boundary layer, leading to the generation of a 'micro' shock wave, in agreement with the experiments.
引用
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页数:12
相关论文
共 30 条
[21]   Investigation of the mechanism for rapid heating of nitrogen and air in gas discharges [J].
Popov, NA .
PLASMA PHYSICS REPORTS, 2001, 27 (10) :886-896
[22]   Aerodynamic flow acceleration using paraelectric and peristaltic electrohydrodynamic effects of a One Atmosphere Uniform Glow Discharge Plasma [J].
Roth, JR .
PHYSICS OF PLASMAS, 2003, 10 (05) :2117-2126
[23]   Electrohydrodynamic flow control with a glow-discharge surface plasma [J].
Roth, JR ;
Sherman, DM ;
Wilkinson, SP .
AIAA JOURNAL, 2000, 38 (07) :1166-1172
[24]  
ROUPASSOV D, 2008, 46 AIAA AER SCI M EX
[25]   Development of nanosecond surface discharge in "actuator" geometry [J].
Roupassov, Dmitry V. ;
Starikovskii, Andrei Yu. .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 2008, 36 (04) :1312-1313
[26]   Dielectric behavior of the system BaSn1-xNbxO3 (x≤0.10) -: art. no. 074103 [J].
Singh, P ;
Kumar, D ;
Parkash, O .
JOURNAL OF APPLIED PHYSICS, 2005, 97 (07)
[27]   SDBD plasma actuator with nanosecond pulse-periodic discharge [J].
Starikovskii, A. Yu ;
Nikipelov, A. A. ;
Nudnova, M. M. ;
Roupassov, D. V. .
PLASMA SOURCES SCIENCE & TECHNOLOGY, 2009, 18 (03)
[28]  
UNFER T, 2009, COMPUT PHYS IN PRESS
[29]   An asynchronous scheme with local time stepping for multi-scale transport problems: Application to gas discharges [J].
Unfer, Thomas ;
Boeuf, Jean-Pierre ;
Rogier, Francois ;
Thivet, Frederic .
JOURNAL OF COMPUTATIONAL PHYSICS, 2007, 227 (02) :898-918
[30]   TOWARDS THE ULTIMATE CONSERVATIVE DIFFERENCE SCHEME .5. 2ND-ORDER SEQUEL TO GODUNOVS METHOD [J].
VAN LEER, B .
JOURNAL OF COMPUTATIONAL PHYSICS, 1979, 32 (01) :101-136