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Experimental study of a passive control of airfoil lift using bioinspired feather flap

机译:使用Bioinspired羽毛瓣的翼型升力被动控制的实验研究

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Birds are known for their extraordinary agility, maneuverability, flexibility and endurance during their flight, even under some adverse flying conditions. Bird wings have been the most inspirational element, attracting the attention of researchers to reveal the underlying physical mechanism of lift production as well as to apply the results into the artificial flying vehicles. This paper presents a systematic experimental investigation on a passive flow control of a NACA0012 airfoil using real feather flap which is installed on the suction or pressure surface. The focus of the present study is to determine the major role of a real feather flap in the aerodynamic performance of a NACA0012 airfoil at small attack angles (alpha). The feather flap width w and its installation position x(in) are varied from 0.27c to 0.8c and from 0.0 to 0.2c, respectively, where x(in) is measured from the leading edge of the airfoil, and c is the chord length of the airfoil. Detailed particle image velocimetry (PIV) measurements are conducted to understand the origin of the aerodynamic benefits introduced by the feather flap. The flap mounted on the suction side may have a positive impact only at large alpha, beyond the stall. On the other hand, when mounted on the pressure side, the feather flap is proved to be beneficial to improve the aerodynamic performance of the airfoil at small alpha (= -4 degrees to 8 degrees). The lift C-L and lift-to-drag ratio C-L/C-D are enhanced by 186% and 72%, respectively, for w = 0.53c, x(in) = 0.2c at alpha = 2 degrees. Time-averaged and instantaneous vorticities, time-averaged streamwise velocity, and lateral velocity around the flapped airfoil weaken, decrease and increase, respectively, compared with those around the plain airfoil, which are attributed to the increased C-L and C-L/C-D.
机译:即使在某些不利的飞行条件下,鸟类均以非凡的敏捷性,机动性,灵活性和耐力而闻名。鸟翼一直是最鼓舞人心的元素,吸引了研究人员的注意力,揭示了升力生产的潜在物理机制,以及将结果应用到人工飞行器中。本文介绍了使用安装在吸入或压力表面上的真正羽毛挡板的NACA0012翼型的被动流量控制的系统实验研究。本研究的焦点是确定真正羽毛瓣在小攻击角(alpha)下Naca0012翼型的空气动力学性能的主要作用。羽毛襟翼宽度W及其安装位置X(In)从0.27℃变化至0.8℃,分别为0.0至0.2℃,其中X(In)从翼型的前缘测量,C是弦翼型的长度。进行详细的粒子图像速度(PIV)测量以了解羽毛瓣引入的空气动力学益处的起源。安装在吸入侧的翼片可能仅在大alpha,超出失速的情况下产生正影响。另一方面,当安装在压力侧时,证明羽毛瓣有利于改善小α(= -4度至8度)的翼型的空气动力学性能。升力C-L和升力比C-L / C-D分别增强186%和72%,用于W = 0.53℃,X(IN)= 0.2℃,α= 2度。与普通的C-L和C-L / C-D归因于增加的C-L和C-L / C-D相比,时间平均和瞬时涡流,时间平均流动速度和横向血管围绕翼型的横向速度削弱,减小和增加,这归因于增加的C-L和C-L / C-D。

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