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Variable Structure Model for Flow-Induced Tonal Noise Control with Plasma Actuators

机译:等离子驱动器的流致音调噪声控制的可变结构模型

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The objective of this work was to study the effect of plasma actuators in attenuating low-speed flow-induced cavity tones from a control point of view by employing techniques from classical control. A modification of the existing physics-based linear model produced a new variable structure model in which a plasma actuator was regarded as a linear gain. The parameters of the overall model working at two operating voltages were identified using experimental data. The effects of the plasma actuator control at other various operating voltages were thus able to be predicted using linear interpolation. The good agreement between the predicted and the measured data supported the proposed variable structure model, inside of which plasma actuators affected the damping of cavity pressure oscillations proportionally to the applied voltage to reduce flow-induced tonal noise. With the proposed variable structure model the system stability controlled by plasma actuators at various operating voltages was ensured, thus a closed-loop control method could be applied without leading to instability. A simple proportional integral derivative controller was implemented. Results show the potential of a closed-loop method by increasing system power efficiency.
机译:这项工作的目的是通过采用经典控制技术,从控制的角度研究等离子体致动器在衰减低速流动引起的腔音方面的作用。对现有基于物理学的线性模型的修改产生了一个新的可变结构模型,其中将等离子体致动器视为线性增益。使用实验数据确定了在两个工作电压下工作的整体模型的参数。因此,可以使用线性插值法预测在其他各种工作电压下的等离子体致动器控制的效果。预测数据与实测数据之间的良好一致性支持了所提出的可变结构模型,在该模型中,等离子体致动器会与施加的电压成比例地影响腔压力振荡的阻尼,以减少流动引起的音调噪声。利用所提出的可变结构模型,确保了在各种工作电压下由等离子体致动器控制的系统稳定性,因此可以应用闭环控制方法而不会导致不稳定。实现了一个简单的比例积分微分控制器。结果表明通过提高系统功率效率,闭环方法的潜力。

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