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Experimental investigation on a vectorized aerodynamic dielectric barrier discharge plasma actuator array

机译:矢量化空气动力介质阻挡放电等离子体致动器阵列的实验研究

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摘要

The Electro-Hydro-Dynamics (EHD) interaction, induced in atmospheric pressure still air by a surface dielectric barrier discharge (DBD) actuator, had been experimentally studied. A plasma aerodynamic actuator array, able to produce a vectorized jet, with the induced airflow oriented toward the desired direction, had been developed. The array was constituted by a sequence of single surface DBD actuators with kapton as dielectric material. An ac voltage in the range of 0–6 kV peak at 15 kHz had been used. The vectorization had been obtained by feeding the upper electrodes with different voltages and by varying the electrical connections. The lower electrodes had been connected either to ground or to the high voltage source, to produce the desired jet orientation and to avoid plasma formation acting in an undesired direction. Voltage and current measurements had been carried out to evaluate waveforms and to estimate the active power delivered to the discharge. Schlieren imaging allowed to visualize the induced jet and to estimate its orientation. Pitot measurements had been performed to obtain velocity profiles for all jet configurations. A proportional relation between the jet deflection angle and the applied voltage had been found. Moreover, a linear relation had been obtained between the maximum speed in the jet direction and the applied voltage. The active power of the discharge is approximated by both a power law function and an exponential function of the applied voltage.
机译:已经通过实验研究了在大气压静止空气中由表面介电势垒放电(DBD)致动器引起的电子水动力(EHD)相互作用。已经开发出了能够产生矢量化射流的等离子空气动力学致动器阵列,其中诱导的气流朝向期望的方向。该阵列由一系列以kapton作为介电材料的单表面DBD执行器组成。交流电压在15 kHz时峰值范围为0–6 kV。通过给上部电极提供不同的电压并通过改变电连接来实现矢量化。下电极已经接地或连接到高压源,以产生所需的射流方向,并避免等离子体形成沿不希望的方向作用。已经进行了电压和电流测量,以评估波形并估计输送到放电的有功功率。 Schlieren成像可以可视化感应射流并估计其方向。已经进行了皮托管测量以获得所有射流配置的速度曲线。已经发现射流偏转角和施加电压之间的比例关系。此外,在喷射方向上的最大速度与施加的电压之间已经获得线性关系。放电的有功功率既可以通过幂律函数也可以通过施加电压的指数函数来估算。

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  • 来源
    《Journal of Applied Physics 》 |2014年第16期| 1-12| 共12页
  • 作者单位

    Department of Electric, Electronic and Information Engineering, University of Bologna, Bologna, 40136 Italy|c|;

  • 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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