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首页> 外文期刊>Acta biomaterialia >Seagull feather shaft: Correlation between structure and mechanical response
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Seagull feather shaft: Correlation between structure and mechanical response

机译:海鸥羽毛轴:结构与机械反应之间的相关性

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摘要

Flight feathers are unique among a variety of keratinous appendages in that they are lightweight, stiff and strong. They are designed to withstand aerodynamic forces, but their morphology and structure have been oversimplified and thus understudied historically. Here we present an investigation of the shaft from seagull primary feathers, elucidate the hierarchical fibrous and porous structure along the shaft length, and correlate the tensile and nanomechanical properties to the fiber orientation. An analysis of the compressive behavior of the rachis based on a square-section model shows a good fit with experimental results, and demonstrates the synergy between the cortex and medulla. Flexural properties of the shaft along the shaft length, analyzed as a sandwich composite, reveal that although all flexural parameters decrease towards the distal shaft, the specific equivalent flexural modulus and strength increase by factors of 2 and 3, respectively. The failure mode in flexure for all specimens is buckling on the compressive surface, whereas the foamy medulla prevents destructive axial cracking and introduces important toughening mechanisms: crack deflection, fiber bridging, and microcracking.
机译:飞行羽毛在各种角哒声中是独一无二的,因为它们是轻巧的,僵硬和强烈的。它们旨在耐受空气动力,但它们的形态和结构已过度简化,因此在历史上被解读。在这里,我们展示了海鸥主羽毛的轴的研究,沿着轴长度阐明了等级纤维和多孔结构,并将拉伸和纳米力学性能与纤维取向相关联。基于方截面模型的rachis对rachis的压缩行为的分析表现出良好的实验结果,并证明了皮质和髓质之间的协同作用。沿轴长的轴的弯曲性能分析为夹层复合材料,揭示了尽管所有弯曲参数朝向远端轴减小,但分别通过2和3的因素增加了特定的等效弯曲模量和强度。所有样品的弯曲中的失效模式在压缩表面上屈曲,而泡沫髓质可以防止破坏性轴裂化并引入重要的增韧机制:裂纹偏转,纤维桥接和微裂纹。

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