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首页> 外文期刊>Journal of Applied Physics >Nanosecond pulsed sliding dielectric barrier discharge plasma actuator for airflow control: Electrical, optical, and mechanical characteristics
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Nanosecond pulsed sliding dielectric barrier discharge plasma actuator for airflow control: Electrical, optical, and mechanical characteristics

机译:用于气流控制的纳秒脉冲滑动电介质势垒放电等离子体致动器:电气,光学和机械特性

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摘要

Plasma actuators used for active flow control are widely studied because they could replace mechanical actuators. Industrial applications of these plasma actuators sometimes require a large surface plasma sheet in view of increasing the interaction region between the discharge and the incoming flow. Instead of using a typical two-electrode nanosecond pulsed dielectric barrier discharge for which the interaction region is limited to about 20 mm, this study proposes to characterize a nanosecond sliding discharge based on a three-electrode geometry in order to increase the extension length up to the electrode gap. This sliding discharge is compared to the typical nanosecond dielectric barrier discharge by means of electrical, optical, and mechanical diagnostics. Electrical characterization reveals that the deposited energy can be widely increased. Time-resolved Intensified Charge Coupled Device (iCCD) images of the discharge development over the dielectric surface highlight that the intensity and the propagation velocity of streamers are strongly affected by the DC voltage applied at the third electrode. Finally, qualitative and quantitative characterizations of the pressure wave due to the surrounding gas heating are proposed by means of Schlieren visualizations and high frequency pressure measurements, respectively.
机译:用于主动流量控制的等离子执行器已得到广泛研究,因为它们可以代替机械执行器。考虑到增加放电和进入流之间的相互作用区域,这些等离子体致动器的工业应用有时需要大表面等离子体片。代替使用典型的两电极纳秒脉冲介电势垒放电,其相互作用区域限制在约20 mm,该研究建议基于三电极几何结构表征纳秒滑动放电,以将延伸长度增加到电极间隙。借助电气,光学和机械诊断,将该滑动放电与典型的纳秒介质阻挡放电进行比较。电学特征表明沉积的能量可以广泛增加。时间分辨的增强电荷耦合器件(iCCD)图像在电介质表面上的放电情况突显出,拖缆的强度和传播速度受施加在第三电极上的DC电压的强烈影响。最后,分别通过Schlieren可视化和高频压力测量,提出了由周围气体加热引起的压力波的定性和定量表征。

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  • 来源
    《Journal of Applied Physics》 |2015年第6期|063301.1-063301.13|共13页
  • 作者单位

    Institut PPRIME (CNRS UPR 3346, Universite de Poitiers, ISAE-ENSMA), SP2MI-Teleport 2 Bd Marie & Pierre Curie BP 30179, Futuroscope, 86962 Poitiers, France;

    Institut PPRIME (CNRS UPR 3346, Universite de Poitiers, ISAE-ENSMA), SP2MI-Teleport 2 Bd Marie & Pierre Curie BP 30179, Futuroscope, 86962 Poitiers, France;

    Institut PPRIME (CNRS UPR 3346, Universite de Poitiers, ISAE-ENSMA), SP2MI-Teleport 2 Bd Marie & Pierre Curie BP 30179, Futuroscope, 86962 Poitiers, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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