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鳞片的层状结构和矿物含量对其弹性模量和强度的贡献。

Contributions of the layer topology and mineral content to the elastic modulus and strength of fish scales.

机构信息

Department of Materials Science and Engineering, University of Washington, Seattle, WA, USA.

Production Engineering Department, School of Engineering, Universidad Eafit, Medellín, Colombia.

出版信息

J Mech Behav Biomed Mater. 2018 Feb;78:56-64. doi: 10.1016/j.jmbbm.2017.11.010. Epub 2017 Nov 7.

Abstract

Fish scales are an interesting natural structural material and their functionality requires both flexibility and toughness. Our previous studies identified that there are spatial variations in the elastic properties of fish scales corresponding to the anatomical regions, and that they appear to be attributed to changes in the microstructure. In the present study, a model is proposed that describes the elastic behavior of elasmoid fish scales in terms of the relative contributions of the limiting layer and both the internal and external elasmodine. The mechanical properties of scales from the Megalops atlanticus (i.e. tarpon) were characterized in tension and compared with predictions from the model. The average error between the predicted and the experimental properties was 7%. It was found that the gradient in mineral content and aspect ratio of the apatite crystals in the limiting layer played the most important roles on the elastic modulus of the scales. Furthermore, misalignment of plies in the external elasmodine from the longitudinal direction was shown to reduce the elastic modulus significantly. This is one approach for modulating the fish scale flexibility for a high mineral content that is required to increase the resistance to puncture.

摘要

鱼鳞是一种有趣的天然结构材料,其功能既需要柔韧性又需要韧性。我们之前的研究表明,鱼鳞的弹性性质在解剖区域上存在空间变化,这似乎归因于微观结构的变化。在本研究中,提出了一个模型,该模型根据限制层以及内部和外部弹性蛋白的相对贡献来描述弹性鱼鳞片的弹性行为。从大西洋马鲛鱼(即美洲大西洋鲷)的鳞片的力学性能在拉伸下进行了表征,并与模型的预测进行了比较。预测和实验特性之间的平均误差为 7%。发现限制层中矿物质含量和磷灰石晶体纵横比的梯度对鳞片的弹性模量起着最重要的作用。此外,从纵向方向看,外部弹性蛋白层中的层错位会导致弹性模量显着降低。这是一种调节鱼鳞柔韧性的方法,对于增加抗刺穿能力所需的高矿物质含量而言,这是必要的。

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