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The leading-edge vortex of swift wing-shaped delta wings

机译:快翼形三角翼的前沿旋涡

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Recent investigations on the aerodynamics of natural fliers have illuminated the significance of the leading-edge vortex (LEV) for lift generation in a variety of flight conditions. A well-documented example of an LEV is that generated by aircraft with highly swept, delta-shaped wings. While the wing aerodynamics of a manoeuvring aircraft, a bird gliding and a bird in flapping flight vary significantly, it is believed that this existing knowledge can serve to add understanding to the complex aerodynamics of natural fliers. In this investigation, a model non-slender delta-shaped wing with a sharp leading edge is tested at low Reynolds number, along with a delta wing of the same design, but with a modified trailing edge inspired by the wing of a common swift Apus apus . The effect of the tapering swift wing on LEV development and stability is compared with the flow structure over the unmodified delta wing model through particle image velocimetry. For the first time, a leading-edge vortex system consisting of a dual or triple LEV is recorded on a swift wing-shaped delta wing, where such a system is found across all tested conditions. It is shown that the spanwise location of LEV breakdown is governed by the local chord rather than Reynolds number or angle of attack. These findings suggest that the trailing-edge geometry of the swift wing alone does not prevent the common swift from generating an LEV system comparable with that of a delta-shaped wing.
机译:最近对天然飞行器空气动力学的研究揭示了前沿涡旋(LEV)在各种飞行条件下对升力产生的重要性。 LEV的一个有据可查的例子是由具有高度后掠的三角翼的飞机产生的。尽管机动飞机的机翼空气动力学,滑翔的鸟和扑翼飞行的鸟有很大的不同,但人们认为,这种现有知识可以帮助人们理解天然飞行器的复杂空气动力学。在这项研究中,以低雷诺数测试了具有尖锐前缘的非细长三角翼模型机翼,以及相同设计的三角翼,但其后缘受到了通用迅捷Apus机翼的启发阿普斯。通过粒子图像测速,将渐缩的快翼对LEV的发展和稳定性的影响与未经修改的三角翼模型上的流动结构进行了比较。第一次,由双列或三列LEV组成的前沿涡流系统记录在快速机翼形的三角翼上,在所有测试条件下都可以找到这种系统。结果表明,LEV击穿的翼展方向位置由局部和弦而不是雷诺数或迎角决定。这些发现表明,仅机翼后缘的几何形状并不能阻止普通机翼产生与三角翼相似的LEV系统。

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