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Experimental Investigation of DBD Plasma Actuators Driven by Repetitive High Voltage Nanosecond Pulses with DC or Low-Frequency Sinusoidal Bias

机译:用DC或低频正弦偏压重复高压纳秒脉冲驱动DBD等离子体致动器的实验研究

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Experimental studies were conducted of a flow induced in an initially quiescent room air by a single asymmetric dielectric barrier discharge driven by voltage waveforms consisting of repetitive nanosecond high-voltage pulses superimposed on DC or alternating sinusoidal or square-wave bias voltage. To characterize the pulses and to optimize their matching to the plasma, a numerical code for short pulse calculations with an arbitrary impedance load was developed. A new approach for non-intrusive diagnostics of plasma actuator induced flows in quiescent gas was proposed, consisting of three elements coupled together: the schlieren technique, burst mode of plasma actuator operation, and 2-D numerical fluid modeling. This approach allowed us to restore the entire two-dimensional unsteady plasma induced flow pattern as well as characteristics of the plasma induced force. The experiments and computations showed vortex flow structures induced by the actuator. Parametric studies of the vortices at different bias voltages, pulse polarities, peak pulse voltages, and pulse repetition rates were conducted. The significance of charge build-up on the dielectric surface was demonstrated. Based on the observations, a new voltage waveform consisting of high-voltage nanosecond repetitive pulses superimposed on a high-voltage low-frequency sinusoidal voltage, was proposed. Advantages of the new voltage waveform were demonstrated experimentally.
机译:通过由电压波形驱动的单个不对称介电阻挡放电在最初的静态介质屏障放电中进行了实验研究,该电压波形由叠加在DC或交替的正弦或方波偏置电压上叠加在一起的重复纳秒高压脉冲。为了表征脉冲并优化与等离子体的匹配,开发了具有任意阻抗负荷的短脉冲计算的数值代码。提出了一种新的等离子体致动器诱导的静态气体中流动的新方法,包括一起耦合的三个元素:Schlieren技术,等离子体致动器操作的突发模式和二维数值流体建模。这种方法使我们允许我们恢复整个二维不稳定等离子体诱导的流动模式以及等离子体诱导力的特征。实验和计算显示了致动器引起的涡流流动结构。进行了不同偏置电压,脉冲极性,峰值脉冲电压和脉冲重复速率的涡流的参数研究。对电介质表面上的电荷积聚的意义进行了说明。基于该观察结果,新的电压波形由高压纳秒重复脉冲叠加在高电压低频率的正弦电压,中提出的。实验证明了新电压波形的优点。

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