首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Multi-scale hierarchy of Chelydra serpentina: microstructure and mechanical properties of turtle shell.
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Multi-scale hierarchy of Chelydra serpentina: microstructure and mechanical properties of turtle shell.

机译:蛇纹龟的多尺度层次:龟壳的微观结构和力学性能。

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摘要

Carapace, the protective shell of a freshwater snapping turtle, Chelydra serpentina, shields them from ferocious attacks of their predators while maintaining light-weight and agility for a swim. The microstructure and mechanical properties of the turtle shell are very appealing to materials scientists and engineers for bio-mimicking, to obtain a multi-functional surface. In this study, we have elucidated the complex microstructure of a dry Chelydra serpentina's shell which is very similar to a multi-layered composite structure. The microstructure of a turtle shell's carapace elicits a sandwich structure of waxy top surface with a harder sub-surface layer serving as a shielding structure, followed by a lamellar carbonaceous layer serving as shock absorber, and the inner porous matrix serves as a load-bearing scaffold while acting as reservoir of retaining water and nutrients. The mechanical properties (elastic modulus and hardness) of various layers obtained via nanoindentation corroborate well with the functionality of each layer. Elastic modulus ranged between 0.47 and 22.15 GPa whereas hardness varied between 53.7 and 522.2 MPa depending on the microstructure of the carapace layer. Consequently, the modulus of each layer was represented into object oriented finite element (OOF2) modeling towards extracting the overall effective modulus of elasticity (~4.75 GPa) of a turtle's carapace. Stress distribution of complex layered structure was elicited with an applied strain of 1% in order to understand the load sharing of various composite layers in the turtle's carapace.
机译:甲壳是淡水鳄龟Chelydra serpentina的保护壳,可保护它们免受掠食者的猛烈攻击,同时保持轻巧和灵活的游泳姿势。龟壳的微观结构和机械性能对材料科学家和工程师进行生物模仿非常有吸引力,以获得多功能的表面。在这项研究中,我们阐明了干燥的Chelydra serpentina壳的复杂微观结构,该结构与多层复合结构非常相似。龟壳甲壳的微观结构产生了一个蜡质顶表面的夹心结构,其中较坚硬的次表面层用作屏蔽结构,其次是片状碳质层作为减震器,内部多孔基质用作承重物脚手架,同时保留水分和养分。通过纳米压痕获得的各层的机械性能(弹性模量和硬度)与各层的功能性得到很好的证实。弹性模量在0.47至22.15 GPa之间,而硬度在53.7至522.2 MPa之间变化,具体取决于外壳层的微观结构。因此,将每一层的模量表示为面向对象的有限元(OOF2)模型,以提取龟甲的总体有效弹性模量(〜4.75 GPa)。施加1%的应变引起复杂的层状结构的应力分布,以便了解龟背甲中各种复合层的载荷分担。

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