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Sliding discharge plasma actuation for forebody vortex control on a slender body at high angles of attack

机译:滑动放电等离子体驱动在高角度的纤细主体上的前置涡流控制

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Two innovative kinds of sliding discharge plasma actuators based on different formation hypotheses of forebody asymmetric vortices are designed using a slender body model. Particle image velocimetry and surface pressure measurements are synchronously used to compare the control effect of antiflow and along-flow sliding discharge actuators for a forebody asymmetric vortex at high angles of attack. The experimental results show that the two kinds of sliding discharge plasma actuators can effectively change the random lateral force caused by the asymmetric vortices, and a better control effect is manifested using the along-flow sliding discharge plasma actuator, which contributes to the approximately linear proportional control of the lateral force. This finding suggests that the convective instability of the forebody vortex system in the leeward region of the slender body has a significant influence on the random lateral forces and moments. Through improving the spatial stability of forebody vortices, the flow control efficiency can be effectively improved. An optimal pulse frequency exists in each of the three actuation modes, but it may vary due to the different geometry configuration of the plasma actuator. In this regard, the research findings will potentially provide technical guidance for improving the efficiency of plasma actuators and understanding the formation mechanism of asymmetric vortices.
机译:基于不同形成的前置的前置的前置假设的两种可创新种类的滑动放电等离子体致动器使用纤细的主体模型设计。粒子图像速度和表面压力测量是同步的,用于比较防冻和沿着流动滑动放电致动器的控制效果,以便在高角度的攻角处进行前置不对称涡流。实验结果表明,两种滑动放电等离子体致动器可以有效地改变由不对称涡流引起的随机横向力,并且使用沿着流动的滑动放电等离子体致动器表现出更好的控制效果,这有助于近似线性比例控制侧向力。该发现表明,纤细体的Leeward地区的前置涡流系统的对流不稳定性对随机侧向力和时刻具有显着影响。通过提高前置涡流的空间稳定性,可以有效地改善流量控制效率。在三种致动模式中的每一个中存在最佳脉冲频率,但由于等离子体致动器的不同几何形状配置,它可能变化。在这方面,研究结果将可能提供技术指导,以提高等离子体执行器的效率,了解不对称涡流的形成机制。

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