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Passive control of the flow around unsteady aerofoils using a self-activated deployable flap

机译:使用自激活的可展开襟翼被动控制非恒定翼型周围的流动

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摘要

Self-activated feathers are used by many birds to adapt their wing characteristics to the sudden change of flight incidence angle. In particular, dorsal feathers are believed to pop-up as a consequence of unsteady flow separation and to interact with the flow to palliate the sudden stall breakdown typical of dynamic stall. Inspired by the adaptive character of birds feathers, some authors have envisaged the potential benefits of using of flexible flaps mounted on aerodynamic surfaces to counteract the negative aerodynamic effects associated with dynamic stall. This contribution explores more in depth the physical mechanisms that play a role in the modification of the unsteady flow field generated by a NACA0020 aerofoil equipped with an elastically mounted flap undergoing a specific ramp-up manoeuvre. We discuss the design of flaps that limit the severity of the dynamic stall breakdown by increasing the value of the lift overshoot also smoothing its abrupt decay in time. A detailed analysis on the modification of the turbulent and unsteady vorticity field due to the flap flow interaction during the ramp-up motion is also provided to explain the more benign aerodynamic response obtained when the flap is in use.
机译:许多鸟类使用自激活的羽毛来调整其机翼特性,以适应飞行入射角的突然变化。尤其是,人们认为背羽是不稳定流动分离的结果而弹出,并与流动相互作用,以缓解典型的动态失速引起的失速崩溃。受鸟类羽毛适应性特征的启发,一些作者设想了使用安装在空气动力学表面上的柔性襟翼抵消与动态失速相关的负面空气动力学影响的潜在好处。该贡献更深入地探索了物理机制,这些物理机制在改变配备有弹性安装的襟翼的NACA0020机翼所产生的不稳定流场中起作用,该机翼经历了特定的斜升操纵。我们讨论了襟翼的设计,该襟翼通过增加升程过冲的值来限制动态失速击穿的严重程度,并平滑其时间的突然衰减。还提供了对由于在升起运动期间襟翼流动相互作用而引起的湍流和非恒定涡流场的修正的详细分析,以解释使用襟翼时获得的更良性的空气动力响应。

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