飞行蜥蜴 Draco volans 滑翔飞行时姿势的影响。

IF 3.1 3区 计算机科学 Q1 ENGINEERING, MULTIDISCIPLINARY Bioinspiration & Biomimetics Pub Date : 2024-01-30 DOI:10.1088/1748-3190/ad1dbb
Valentin Buffa, William Salaün, Paola Cinnella
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引用次数: 0

摘要

蛛形纲蜥蜴属无疑是最著名的爬行动物滑翔器,它们在空中利用肋骨支撑的拍翼作为升力面。最近对这些爬行动物的研究强调了身体姿势在滑翔过程中的作用,然而,梭鱼姿势变化的空气动力学仍不清楚。在此,我们采用数值方法研究了梭子蟹的空气动力学和滑翔性能,重点研究了三种姿势变化:翼扩张、身体外倾和肢体定位。为此,我们进行了 70 次滑翔飞行的三维稳态计算流体动力学模拟和 240 次二维滑翔轨迹计算。我们的结果表明,在空中飞行时,D. volans在其翅膀上产生一个分离的湍流边界层,其特点是有一个大的再循环单元,该单元通过与翼尖涡流的相互作用而附着在翼面上,从而增加了升力的产生。这种升力产生机制可通过改变机翼展开和形状来控制,从而调节空气动力的产生。此外,我们的轨迹模拟突出显示了机体外倾角和方向对滑翔距离的影响。这揭示了田鸡如何控制其滑翔性能,并符合这些动物在起飞前规划滑翔路径的观察结果。最后,疣鼻鲉的俯仰大多是中性的,具有很强的机动性,这一点与其他脊椎动物滑翔机相似。因此,本文提出的数值研究有助于更好地理解这种标志性动物的升力机制以及飞行中姿势变化的影响,并将有助于研究无法直接观察到的类似滑翔爬行动物的滑翔飞行。
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Influence of posture during gliding flight in the flying lizardDraco volans.

The agamid lizards of the genusDracoare undoubtedly the most renown reptilian gliders, using their rib-supported patagial wings as lifting surfaces while airborne. Recent investigations into these reptiles highlighted the role of body posture during gliding, however, the aerodynamics of postural changes inDracoremain unclear. Here, we examine the aerodynamics and gliding performances ofDraco volansusing a numerical approach focusing on three postural changes: wing expansion, body camber, and limb positioning. To this aim, we conducted 70 three-dimensional steady-state computational fluid dynamics simulations of gliding flight and 240 two-dimensional glide trajectory calculations. Our results demonstrate that while airborne,D. volansgenerates a separated turbulent boundary layer over its wings characterized by a large recirculation cell that is kept attached to the wing surface by interaction with wing-tip vortices, increasing lift generation. This lift generating mechanism may be controlled by changing wing expansion and shape to modulate the generation of aerodynamic force. Furthermore, our trajectory simulations highlight the influence of body camber and orientation on glide range. This sheds light on howD. volanscontrols its gliding performance, and conforms to the observation that these animals plan their glide paths prior to take off. Lastly,D. volansis mostly neutral in pitch and highly maneuverable, similar to other vertebrate gliders. The numerical study presented here thus provides a better understanding of the lift generating mechanism and the influence of postural changes in flight in this emblematic animal and will facilitate the study of gliding flight in analogous gliding reptiles for which direct observations are unavailable.

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来源期刊
Bioinspiration & Biomimetics
Bioinspiration & Biomimetics 工程技术-材料科学:生物材料
CiteScore
5.90
自引率
14.70%
发文量
132
审稿时长
3 months
期刊介绍: Bioinspiration & Biomimetics publishes research involving the study and distillation of principles and functions found in biological systems that have been developed through evolution, and application of this knowledge to produce novel and exciting basic technologies and new approaches to solving scientific problems. It provides a forum for interdisciplinary research which acts as a pipeline, facilitating the two-way flow of ideas and understanding between the extensive bodies of knowledge of the different disciplines. It has two principal aims: to draw on biology to enrich engineering and to draw from engineering to enrich biology. The journal aims to include input from across all intersecting areas of both fields. In biology, this would include work in all fields from physiology to ecology, with either zoological or botanical focus. In engineering, this would include both design and practical application of biomimetic or bioinspired devices and systems. Typical areas of interest include: Systems, designs and structure Communication and navigation Cooperative behaviour Self-organizing biological systems Self-healing and self-assembly Aerial locomotion and aerospace applications of biomimetics Biomorphic surface and subsurface systems Marine dynamics: swimming and underwater dynamics Applications of novel materials Biomechanics; including movement, locomotion, fluidics Cellular behaviour Sensors and senses Biomimetic or bioinformed approaches to geological exploration.
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