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首页> 外文期刊>Plasma Science, IEEE Transactions on >Investigation of a Micro Dielectric Barrier Discharge Plasma Actuator for Regional Aircraft Active Flow Control
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Investigation of a Micro Dielectric Barrier Discharge Plasma Actuator for Regional Aircraft Active Flow Control

机译:用于区域飞机主动流控制的微介电阻挡放电等离子体致动器的研究

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This paper reports a multitechnique investigation of a micro dielectric barrier discharge plasma actuator (DBDPA) as a promising system to control separated flows. The device was manufactured through a photolithographic technique and its performances and capabilities were compared with the ones of conventional macro DBDPAs. Alternate current operation under sinusoidal voltage excitation was studied in the absence of external flow by means of many experimental techniques like discharge imaging, flow visualizations, particle image velocimetry, infrared thermography, and electrical characterization. The influence of the operating parameters was investigated. The main results underlined that an increase in the voltage amplitude or frequency brought to a rise in the maximum induced velocity, electrical power dissipation, and actuator surface temperature. Moreover, it was assessed that the small heating of the micro DBDPA did not affect the actuated flow. A jet velocity up to 1.36 m/s was obtained at a 9.01 W/m electrical power dissipation per unit electrode length. The device realized by microelectronic fabrication technology allowed reaching a flow velocity magnitude comparable with the one of conventional macro DBDPAs, with a reduction in applied voltage, power dissipation, and actuator size. Furthermore, the induced wall jet was more confined in the area in proximity of the device, because of the limited plasma discharge extension.
机译:本文报道了一种微电介质势垒放电等离子体致动器(DBDPA)的多技术研究,该技术是一种有望控制分离流的系统。该器件是通过光刻技术制造的,其性能和功能已与传统的宏DBDPA进行了比较。通过许多实验技术,如放电成像,流动可视化,粒子图像测速,红外热成像和电学表征,研究了在没有外部流动的情况下在正弦电压激励下的交流电运行情况。研究了运行参数的影响。主要结果表明,电压幅值或频率的增加导致最大感应速度,电功率耗散和执行器表面温度升高。此外,据评估,微型DBDPA的少量加热不会影响驱动流量。在每单位电极长度9.01 W / m的电耗下获得高达1.36 m / s的喷射速度。通过微电子制造技术实现的设备允许达到与传统宏DBDPA相当的流速幅度,并减少了施加电压,功耗和执行器尺寸。此外,由于有限的等离子体放电扩展,所感应的壁射流更局限在装置附近。

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