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首页> 外文期刊>Plasma Science & Technology >Reduction of turbulent boundary layer drag through dielectric-barrier-discharge plasma actuation based on the Spalding formula
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Reduction of turbulent boundary layer drag through dielectric-barrier-discharge plasma actuation based on the Spalding formula

机译:基于素材公式的介电阻挡 - 放电等离子体致动减小湍流边界层拖曳

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摘要

It is a very difficult task to develop a method of reducing turbulent boundary layer drag. However, in recent years, plasma flow control technology has demonstrated huge potential in friction drag reduction. To further investigate this issue, a smooth plate model was designed as a testing object arranged with a bidirectional dielectric-barrier-discharge (DBD) plasma actuator. In addition, measurement of skin friction drag was achieved by applying hot wire anemometry to obtain the velocity distribution of the turbulent boundary layer. A method of quantifying the friction drag effect was adopted based on the Spalding formula fitted with the experiment data. When plasma actuation was conducted, a velocity defect occurred at the two measuring positions, compared with the no plasma control condition; this means that the DBD plasma actuation could reduce the drag successfully in the downstream of the actuator. Moreover, drag reduction caused by backward actuation was slightly more efficient than that caused by forward actuation. With an increasing distance from plasma actuation, the drag-reduction effect could become weaker. Experimental results also show that the improvement of drag-reduction efficiency using a DBD plasma actuator can achieve about 8.78% in the local region of the experimental flat model.
机译:开发一种减少湍流边界层拖动的方法是一种非常困难的任务。然而,近年来,等离子体流量控制技术已经表现出摩擦阻力减少的巨大潜力。为了进一步研究这个问题,设计了一个平滑的板模型作为具有双向介质阻挡 - 放电(DBD)等离子体致动器的测试对象。另外,通过施加热线风速测量来实现皮肤摩擦拖曳的测量,以获得湍流边界层的速度分布。基于拟合实验数据的素材配方采用量化摩擦拖动效应的方法。当进行等离子体致动时,与无等离子体控制条件相比,在两个测量位置发生速度缺陷;这意味着DBD等离子体致动可以在执行器的下游成功减少拖动。此外,由后向致动引起的减阻略微高效,而不是通过前向致动引起的效率。随着距离等离子体致动的越来越多,减压效果可能变得较弱。实验结果还表明,使用DBD等离子体致动器的阻抗效率的提高可以在实验平面模型的局部区域实现约8.78%。

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