Wing extension–flexion coupled aeroelastic effects improve avian gliding performance

变形 气动弹性 空气动力学 机翼扭转 颤振 刚度 结构工程 后掠翼 飞行羽毛 涡流 机械 航空航天工程 计算机科学 攻角 物理 工程类 蜕皮 植物 幼虫 计算机视觉 生物
作者
Jasmin Wong,Vaibhav Joshi,Rajeev K. Jaiman,Douglas L. Altshuler
出处
期刊:Journal of the Royal Society Interface [Royal Society]
卷期号:22 (226)
标识
DOI:10.1098/rsif.2024.0753
摘要

During flight, birds instigate remarkably large changes in wing shape, commonly termed ‘wing morphing’. These changes in shape, particularly extension–flexion, have been well documented to influence the production of aerodynamic forces. However, it is unknown how wing stiffness changes as a result of the structural rearrangements needed for morphing. We address this gap in knowledge through mechanical testing of in situ flight feathers in anaesthetized pigeons and found that while the most distal portion of the feathered wing remained unaffected, proximal areas saw an increase in out-of-plane stiffness due to wing folding. Following this, we used computational fluid–structure interaction simulations to evaluate how this morphing-coupled change in stiffness might modulate local flow patterns to affect aerodynamic performance. We found that flexible wings perform better than entirely rigid wings as an increase in near-wall vorticity delayed flow separation. Furthermore, an increase in stiffness in a folded wing during high-speed flight prevented the reduction in lift seen in more flexible cases caused by aeroelastic flutter modes destructively interfering with shed leading-edge vortices. Collectively, these results reveal that mechanical changes coupled with wing morphing can provide a speed-dependent mechanism to enhance flight performance.
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