涡流
机械
物理
涡度
等离子体驱动器
涡流发生器
空气动力学
同轴
边界层
涡流环
流量控制(数据)
等离子体
经典力学
机械工程
介质阻挡放电
工程类
电信
量子力学
作者
Georgi Hristov,Phillip J. Ansell,Joseph W. Zimmerman,David L. Carroll
出处
期刊:AIAA Journal
[American Institute of Aeronautics and Astronautics]
日期:2023-11-03
卷期号:: 1-12
摘要
Motivated by the use of magnetohydrodynamic devices in fluid dynamic flow control research, the current work experimentally studied the actuation mechanism and the resulting aerodynamic interactions of magnetically driven low-current arc-plasma discharges. The investigation was conducted in the context of boundary-layer interactions in low-speed crossflow conditions through the use of coaxial and v-shaped geometries. Time-averaged velocity field measurements showed that the toroidal region of vorticity induced by the coaxial geometry in quiescent air resulted in the formation of a horseshoe vortex in crossflow. Similarly, the v-shaped actuator resulted in the formation of streamwise vortices. The resulting boundary layers had s-shaped streamwise velocity profiles as measured in the wall-normal direction characteristic for the flow downstream of a conventional vortex generator pair, due to the three-dimensional mixing induced by coherent vortex structures. A simplified model based on intermolecular momentum transfer through collisions is proposed to explain the fundamental discharge–air interactions and the induced flowfields. These results inform the applications of various magnetically driven discharges in the field of aerodynamic flow control.
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