The Role of Vanes in the Damping of Bird Feathers

被引:0
作者
Kai Deng
Hamed Rajabi
Alexander Kovalev
Clemens F. Schaber
Zhendong Dai
Stanislav N. Gorb
机构
[1] Kiel University,Functional Morphology and Biomechanics, Institute of Zoology
[2] London South Bank University,School of Engineering
[3] Nanjing University of Aeronautics and Astronautics,Institute of Bioinspired Structure and Surface Engineering
来源
Journal of Bionic Engineering | 2023年 / 20卷
关键词
Bird; Feather; Vibrations; Damping; Bionic;
D O I
暂无
中图分类号
学科分类号
摘要
Bird feathers sustain bending and vibrations during flight. Such unwanted vibrations could potentially cause noise and flight instabilities. Damping could alter the system response, resulting in improving quiet flight, stability, and controllability. Vanes of feathers are known to be indispensable for supporting the aerodynamic function of the wings. The relationship between the hierarchical structures of vanes and the mechanical properties of the feather has been previously studied. However, still little is known about their relationship with feathers’ damping properties. Here, the role of vanes in feathers’ damping properties was quantified. The vibrations of the feathers with vanes and the bare shaft without vanes after step deflections in the plane of the vanes and perpendicular to it were measured using high-speed video recording. The presence of several main natural vibration modes was observed in the feathers with vanes. After trimming vanes, more vibration modes were observed, the fundamental frequencies increased by 51–70%, and the damping ratio decreased by 38–60%. Therefore, we suggest that vanes largely increase feather damping properties. Damping mechanisms based on the morphology of feather vanes are discussed. The aerodynamic damping is connected with the planar vane surface, the structural damping is related to the interlocking between barbules and barbs, and the material damping is caused by the foamy medulla inside barbs.
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页码:1646 / 1655
页数:9
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