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首页> 外文期刊>Plasma Sources Science & Technology >Gas-heating phenomenon in a nanosecond pulse discharge in atmospheric-pressure air and its application for high-speed flow control
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Gas-heating phenomenon in a nanosecond pulse discharge in atmospheric-pressure air and its application for high-speed flow control

机译:气体加热现象在大气压空气中纳秒脉冲放电及其用于高速流量控制的应用

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摘要

The interaction between the gas-heating phenomenon in a pulsed discharge in atmosphericpressure air and the separated shear layer in the flow around the airfoil is discussed. The first half of the paper details the development of the modeling for gas heating in a pulsed discharge in atmospheric-pressure air and reviews recent research results. Particular attention is paid to the processes of fast and slow gas heating. In the latter half of the paper, the experimental results of the high-speed Schlieren visualization are presented and the interaction between the nanosecondpulse- driven dielectric-barrier-discharge plasma actuator (ns-DBDPA) actuation and the density field is discussed, based on the periodic and time-averaged components of the Schlieren signal intensity. The time-averaged intensity of the contrast of the Schlieren signal that originates in the separated shear layer changes according to the normalized actuation frequency of ns-DBDPA, F+. As F+ increases from 0.1 to 2, the periodic component of the Schlieren signal intensity increases, resulting in a decrease in the time-averaged contrast of the Schlieren signal. When F+ > 2, the heated air caused by ns-DBDPA actuation is accumulated along the separated shear layer, resulting in an increase in the time-averaged contrast of the Schlieren signal.
机译:讨论了气体加热现象与翼型周围的流动中的脉冲抑制空气中的脉冲放电中的相互作用和分离的剪切层。本文的前半部分详细介绍了在大气压空气中脉冲放电中的气体加热建模的开发,并评估最近的研究结果。特别注意快速和缓慢加热的过程。在本文的后半部分中,提出了高速Schlieren可视化的实验结果,并且讨论了基于Schlieren信号强度的周期性和时间平均分量。根据NS-DBDPA,F +的标准化致动频率,源自分离的剪切层的Schlieren信号的对比度的时间平均强度。由于F +从0.1增加到2,Schlieren信号强度的周期性分量增加,导致Schlieren信号的时间平均对比度降低。当F +> 2时,由NS-DBDPA致动引起的加热空气沿着分离的剪切层累积,导致Schlieren信号的时间平均对比度增加。

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