Effect of Coupled Wing Motion on the Aerodynamic Performance during Different Flight Stages of Pigeon.

IF 10.5 Q1 ENGINEERING, BIOMEDICAL
Cyborg and bionic systems (Washington, D.C.) Pub Date : 2025-03-11 eCollection Date: 2025-01-01 DOI:10.34133/cbsystems.0200
Yishi Shen, Yi Xu, Weimin Huang, Chengrui Shang, Qing Shi
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Abstract

Birds achieve remarkable flight performance by flexibly morphing their wings during different flight stages. However, due to the lack of experimental data on the free morphing of wings and the complexity of coupled motion in aerodynamics studies, the intricate kinematic changes and aerodynamic mechanisms of wings during various flight stages still need to be explored. To address this issue, we collected comprehensive data on free-flight pigeons (Columba livia). We categorized the wing kinematic parameters during the takeoff, leveling flight, and landing stages into 5 kinematics parameters: flap, twist, sweep, fold, and bend. Based on this, we established a 3-dimensional pigeon wing model, defined its coupled motion using rotation matrices, and then used the computational fluid dynamics method to simulate the coupled motion in the 3 flight stages. We analyzed and compared the kinematic parameter changes, aerodynamic forces, and flow structures. It is found that, within a wingbeat cycle, pigeons during the takeoff stage cause the leading-edge vortex to attach earlier, enhancing instantaneous lift to overcome gravity and achieve ascending. During the leveling flight stage, the pigeon's average lift becomes stable, ensuring a steady flight posture. In the landing stage, the pigeon increases the wing area facing the airflow to maintain a stable landing posture, achieving a more minor, consistent average lift while increasing drag. This study enhances our understanding of birds' flight mechanisms and provides theoretical guidance for developing efficient bio-inspired flapping-wing aerial vehicles.

耦合翼运动对鸽子不同飞行阶段气动性能的影响。
鸟类在不同的飞行阶段灵活地变形翅膀,从而获得卓越的飞行性能。然而,由于空气动力学研究中缺乏机翼自由变形的实验数据和耦合运动的复杂性,机翼在不同飞行阶段的复杂运动变化和气动机理仍有待探索。为了解决这个问题,我们收集了自由飞行的鸽子(Columba livia)的全面数据。我们将起飞、调平飞行和着陆阶段的机翼运动学参数分为5个运动学参数:襟翼、扭转、掠翼、折叠和弯曲。在此基础上,建立了鸽子翅膀的三维模型,利用旋转矩阵定义了鸽子翅膀的耦合运动,并用计算流体力学方法对鸽子翅膀在3个飞行阶段的耦合运动进行了仿真。我们分析和比较了运动参数的变化、气动力和流动结构。研究发现,在一个振翼周期内,鸽子在起飞阶段使前缘涡更早附着,增强瞬时升力以克服重力而实现上升。在水平飞行阶段,鸽子的平均升力变得稳定,确保了稳定的飞行姿态。在着陆阶段,鸽子增加面对气流的翅膀面积,以保持稳定的着陆姿势,在增加阻力的同时获得更小、一致的平均升力。该研究增强了我们对鸟类飞行机理的认识,为研制高效的仿生扑翼飞行器提供了理论指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.70
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0.00%
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审稿时长
21 weeks
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