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Effects of Nanosecond Pulse Driven Plasma Actuators on Turbulent Shear Layers

机译:纳秒脉冲驱动等离子致动器对湍流剪切层的影响

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摘要

The effects of nanosecond pulse driven dielectric barrier discharge plasma actuators on turbulent shear layers are examined experimentally on a mixing layer and backward facing step. The nanosecond pulse driven dielectric barrier discharge control mechanism is believed to be primarily thermal in contrast to most flow control actuators, including alternating current dielectric barrier discharges, which rely on periodic or pulsed momentum to excite shear-layer instabilities. Control authority using thermal perturbations has been demonstrated in various high-speed shear flows yet many questions on fundamental physics and scaling remain unanswered. This work aims to provide insight into both nanosecond pulse driven dielectric barrier discharges and thermal mechanisms in general for high-amplitude aerodynamic flow control. Previous studies suggest the efficacy of nanosecond pulse driven dielectric barrier discharges (and likely thermal perturbations in general) is strongly dependent on initial shear-layer conditions, namely some measure of the initial thickness. In an effort to support this hypothesis, boundary-layer suction is applied to a splitter plate upstream of a turbulent mixing-layer origin. This successfully reduces the initial mixing-layer momentum thickness, but does not result in substantial nanosecond pulse driven dielectric barrier discharge control authority. These results and the experimental conditions are documented in detail. Application of nanosecond pulse driven dielectric barrier discharge forcing to the turbulent shear layer downstream of a backward facing step having even smaller initial thickness produces the expected control authority for lower pulse amplitude than employed in the mixing-layer case. This supports the importance of initial shear-layer thickness (rather than state) for estimating potential control authority by nanosecond pulse driven dielectric barrier discharge and thermal perturbations in general.
机译:纳秒脉冲驱动介电势垒放电等离子体致动器对湍流剪切层的影响在混合层和后向步骤上进行了实验检验。与大多数流量控制致动器相比,纳秒脉冲驱动的介电势垒放电控制机构被认为主要是热的,包括交流电介电势垒放电,后者依赖周期性或脉冲动量来激发剪切层的不稳定性。在各种高速剪切流中已经证明了使用热扰动的控制权,但有关基本物理和结垢的许多问题仍未得到解答。这项工作旨在深入了解纳秒脉冲驱动的介电势垒放电和一般用于高振幅空气动力流控制的热机制。先前的研究表明,纳秒脉冲驱动的介电势垒放电(通常可能发生热扰动)的功效在很大程度上取决于初始剪切层条件,即初始厚度的某种度量。为了支持该假设,将边界层吸力施加到湍流混合层起点上游的隔板上。这样可以成功地减小初始混合层的动量厚度,但不会导致实质性的纳秒级脉冲驱动介电势垒放电控制权。详细记录了这些结果和实验条件。将纳秒脉冲驱动的介电势垒放电强制施加到初始厚度甚至更小的后向步骤下游的湍流剪切层上,将产生比混合层情况下更低的脉冲幅度的预期控制权限。这支持初始剪切层厚度(而不是状态)对于通过纳秒脉冲驱动的介电势垒放电和一般的热扰动估算电势控制权的重要性。

著录项

  • 来源
    《AIAA Journal》 |2016年第2期|637-651|共15页
  • 作者单位

    Univ Arizona, Dept Aerosp & Mech Engn, Tucson, AZ 85721 USA;

    Univ Arizona, Dept Aerosp & Mech Engn, Tucson, AZ 85721 USA;

    Univ Arizona, Dept Aerosp & Mech Engn, Tucson, AZ 85721 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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