Electrical and plasma characteristics of nanosecond-pulse surface discharge under varying pressure

H. Song, M. Jia, D. Jin, W. Cui, W. Wu
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引用次数: 1

Abstract

Plasma flow control, based on plasma aerodynamic actuation (PAA), has become a newly-rising focus of international aerodynamic and thermodynamic fields. Nanosecond-pulse surface discharge is considered to be a new way of generating plasma aerodynamic actuation. When it comes to the practical application, the altitude at which plasma flow control is expected to be adopted is about 10-20km, where the static pressure is only 40-185 Torr, and it is much lower than atmospheric pressure. In this paper, with a three-electrode plasma sheet actuator, the electrical and plasma characteristics of nanosecond-pulse surface discharge are experimentally investigated under varying pressures. A RO4350B (high frequency circuit material, Rogers) plate with the thickness of 1 mm and relative permittivity constant of 3.48 is taken as the dielectric layer of the plasma sheet actuator. The discharge pattern changes from dielectric barrier discharge to sliding discharge when the pressure is under 200Torr. As the pressure decreases from 760 Torr to 5 Torr, N2(C3Πu) vibrational temperature decreases slightly at first and then increases remarkably. With the pressure of about 80 Torr, the change of discharge mode from a filamentary type to a glow type has been observed. In the filamentary mode, the electron temperature hardly changes, while in the glow mode, the electron temperature increases obviously with the decrease of pressure.
变压下纳秒脉冲表面放电的电学和等离子体特性
以等离子体气动驱动(PAA)为基础的等离子体流动控制已成为国际气动热力学领域的新兴研究热点。纳秒脉冲表面放电被认为是一种产生等离子体气动驱动的新方法。在实际应用中,预计采用等离子体流量控制的高度约为10-20km,其中静压仅为40-185 Torr,远低于大气压力。本文利用三电极等离子体片作动器,实验研究了不同压力下纳秒脉冲表面放电的电学特性和等离子体特性。选取厚度为1 mm,相对介电常数为3.48的RO4350B(高频电路材料,Rogers)板作为等离子片致动器的介电层。当压力在200Torr以下时,放电模式由介质阻挡放电转变为滑动放电。当压力从760 Torr降低到5 Torr时,N2(C3Πu)的振动温度先略有下降后显著升高。在约80托的压力下,观察到放电模式由丝状向辉光型转变。在丝状模式下,电子温度几乎没有变化,而在发光模式下,电子温度随着压力的降低而明显升高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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