Department of Engineering Mechanics, Institute of Biomechanics and Medical Engineering, AML, Tsinghua University, , Beijing 100084, People's Republic of China.
J R Soc Interface. 2014 Jan 8;11(92):20131016. doi: 10.1098/rsif.2013.1016. Print 2014 Mar 6.
As a natural composite, nacre has an elegant staggered 'brick-and-mortar' microstructure consisting of mineral platelets glued by organic macromolecules, which endows the material with superior mechanical properties to achieve its biological functions. In this paper, a microstructure-based crack-bridging model is employed to investigate how the strength of nacre is affected by pre-existing structural defects. Our analysis demonstrates that owing to its special microstructure and the toughening effect of platelets, nacre has a superior flaw-tolerance feature. The maximal crack size that does not evidently reduce the tensile strength of nacre is up to tens of micrometres, about three orders higher than that of pure aragonite. Through dimensional analysis, a non-dimensional parameter is proposed to quantify the flaw-tolerance ability of nacreous materials in a wide range of structural parameters. This study provides us some inspirations for optimal design of advanced biomimetic composites.
珍珠层作为一种天然复合材料,具有优雅的交错“砖-泥”微观结构,由被有机大分子黏合的矿物薄片组成,这使材料具有优异的机械性能,从而实现其生物学功能。本文采用基于微观结构的裂纹桥接模型来研究珍珠层的强度如何受到预先存在的结构缺陷的影响。我们的分析表明,由于其特殊的微观结构和薄片的增韧效应,珍珠层具有优异的抗缺陷能力。最大的裂纹尺寸在不明显降低珍珠层拉伸强度的情况下可达数十微米,比纯方解石高三个数量级。通过量纲分析,提出了一个无量纲参数来量化大范围结构参数下珍珠层材料的抗缺陷能力。本研究为先进仿生复合材料的优化设计提供了一些启示。