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首页> 外文期刊>Acta biomaterialia >A lightweight, biological structure with tailored stiffness: The feather vane
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A lightweight, biological structure with tailored stiffness: The feather vane

机译:一种轻量级,生物结构,具有量身定制的僵硬:羽毛叶片

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摘要

The flying feathers of birds are keratinous appendages designed for maximum performance with a minimum weight penalty. Thus, their design contains ingenious combinations of components that optimize lift, stiffness, aerodynamics, and damage resistance. This design involves two main parts: a central shaft that prescribes stiffness and lateral vanes which allows for the capture of air. Within the feather vane, barbs branch from the shaft and barbules branch from barbs, forming a flat surface which ensures lift. Microhooks at the end of barbules hold barbs tightly together, providing the close-knit, unified structure of the feather vane and enabling a repair of the structure through the reattachment of un-hooked junctions. Both the shaft and barbs are lightweight biological structures constructed of keratin using the common motif of a solid shell and cellular interior. The cellular core increases the resistance to buckling with little added weight. Here we analyze the detailed structure of the feather barb and, for the first time, explain its flexural stiffness in terms of the mechanics of asymmetric foam-filled beams subjected to bending. The results are correlated and validated with finite element modeling. We compare the flexure of single barbs as well as arrays of barbs and find that the interlocking adherence of barbs to one another enables a more robust structure due to minimized barb rotation during deflection. Thus, the flexure behavior of the feather vane can be tailored by the adhesive hooking between barbs, creating a system that mitigates damage. A simplified three-dimensional physical model for this interlocking mechanism is constructed by additive manufacturing. The exceptional architecture of the feather vane will motivate the design of bioinspired structures with tailored and unique properties ranging from adhesives to aerospace materials.
机译:鸟类的飞行羽毛是角质阑尾,专为最大的性能而设计,最低罚款。因此,它们的设计包含了优化提升,刚度,空气动力学和损伤阻力的组件的巧妙组合。这种设计涉及两个主要部分:一个中心轴,规定刚度和横向叶片,允许捕获空气。在羽毛叶片内,倒钩从轴和杠杆分支从倒钩,形成一个确保升力的平坦表面。倒钩末端的微型孔将倒钩紧紧地保持在一起,提供羽毛叶片的紧密统一结构,并通过重新连接的连接点来实现结构的修复。轴和倒钩都是用固体壳和细胞内部的共同的基序构成角蛋白的轻质生物结构。细胞芯增加了屈曲的抗性,重量很少。在这里,我们分析了羽毛倒钩的详细结构,并首次在经过弯曲的不对称泡沫填充梁的机制方面解释其弯曲刚度。结果是相关的,并用有限元建模验证。我们比较单个倒钩的弯曲以及倒钩阵列,并发现由于在偏转期间最小化的倒钩旋转,禁止倒钩的互锁粘附能够更加稳健的结构。因此,羽毛叶片的挠曲行为可以通过倒钩之间的粘合钩来定制,从而产生减轻损坏的系统。这种互锁机构的简化三维物理模型由添加剂制造构造。羽毛叶片的卓越架构将激励生物悬浮结构的设计,其定制和独特的性能范围从粘合剂到航空航天材料。

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