Al-Maskari N S, McAdams D A, Reddy J N
Department of Mechanical Engineering, Texas A&M University, TX 77843-3123, USA.
Department of Mechanical Engineering, Texas A&M University, TX 77843-3123, USA.
Mater Sci Eng C Mater Biol Appl. 2017 Jan 1;70(Pt 1):772-776. doi: 10.1016/j.msec.2016.09.061. Epub 2016 Sep 28.
Nacre is a tough yet stiff natural composite composed of microscopic mineral polygonal tablets bonded by a tough biopolymer. The high stiffness of nacre is known to be due to its high mineral content. However, the remarkable toughness of nacre is explained by its ability to deform past a yield point and develop large inelastic strain over a large volume around defects and cracks. The high strain is mainly due to sliding and waviness of the tablets. Mimicking nacre's remarkable properties, to date, is still a challenge due in part to fabrication challenges as well as a lack of models that can predict its properties or properties of a bulk material given specific constituent materials and material structure. Previous attempts to create analytical models for nacre include tablet sliding but don't account for the waviness of the tablets. In this work, a mathematical model is proposed to account for the waviness of the tablet. Using this model, a better prediction of the elastic modulus is obtained that agrees with experimental values found in the literature. In addition, the waviness angle can be predicted which is within the recommended range. Having a good representative model aids in designing a bio-mimicked nacre.
珍珠层是一种坚韧而坚硬的天然复合材料,由微小的矿物多边形薄片通过坚韧的生物聚合物粘结而成。已知珍珠层的高硬度归因于其高矿物质含量。然而,珍珠层非凡的韧性可以通过其在屈服点之后变形并在缺陷和裂纹周围的大体积区域产生大的非弹性应变的能力来解释。高应变主要是由于薄片的滑动和波纹状。迄今为止,模仿珍珠层的非凡特性仍然是一个挑战,部分原因在于制造方面的挑战以及缺乏能够根据特定组成材料和材料结构预测其特性或块状材料特性的模型。先前为珍珠层创建分析模型的尝试包括薄片滑动,但没有考虑薄片的波纹状。在这项工作中,提出了一个数学模型来考虑薄片的波纹状。使用这个模型,可以获得与文献中发现的实验值相符的更好的弹性模量预测。此外,可以预测波纹角,其在推荐范围内。拥有一个良好的代表性模型有助于设计仿生珍珠层。