Bulgarian Academy of Sciences, Institute of Mechanics, Acad. G. Bonchev Str. Bl. 4, Sofia, Bulgaria.
J Mech Behav Biomed Mater. 2011 Feb;4(2):129-45. doi: 10.1016/j.jmbbm.2010.09.015. Epub 2010 Oct 1.
Recently, we proposed a hierarchical model for the elastic properties of mineralized lobster cuticle using (i) ab initio calculations for the chitin properties and (ii) hierarchical homogenization performed in a bottom-up order through all length scales. It has been found that the cuticle possesses nearly extremal, excellent mechanical properties in terms of stiffness that strongly depend on the overall mineral content and the specific microstructure of the mineral-protein matrix. In this study, we investigated how the overall cuticle properties changed when there are significant variations in the properties of the constituents (chitin, amorphous calcium carbonate (ACC), proteins), and the volume fractions of key structural elements such as chitin-protein fibers. It was found that the cuticle performance is very robust with respect to variations in the elastic properties of chitin and fiber proteins at a lower hierarchy level. At higher structural levels, variations of design parameters such as the volume fraction of the chitin-protein fibers have a significant influence on the cuticle performance. Furthermore, we observed that among the possible variations in the cuticle ingredients and volume fractions, the experimental data reflect an optimal use of the structural variations regarding the best possible performance for a given composition due to the smart hierarchical organization of the cuticle design.
最近,我们提出了一个关于矿化龙虾外骨骼弹性性质的层次模型,该模型使用了(i) 从头计算的壳聚糖性质和 (ii) 通过自下而上的所有长度尺度进行的层次均匀化。研究发现,外骨骼在刚度方面具有几乎极值的优异机械性能,这强烈依赖于整体矿物含量和矿物-蛋白质基质的特定微观结构。在这项研究中,我们研究了当组成部分(壳聚糖、无定形碳酸钙 (ACC)、蛋白质)的性质以及关键结构元素(如壳聚糖-蛋白质纤维)的体积分数发生显著变化时,整个外骨骼性质如何变化。研究发现,在外骨骼的较低层次的壳聚糖和纤维蛋白的弹性性质发生变化时,外骨骼性能非常稳健。在较高的结构层次上,设计参数(如壳聚糖-蛋白质纤维的体积分数)的变化对外骨骼性能有重大影响。此外,我们观察到,在可能的外骨骼成分和体积分数的变化中,实验数据反映了由于外骨骼设计的智能层次组织,在外骨骼成分和体积分数的可能变化中,实验数据反映了由于外骨骼设计的智能层次组织,在外骨骼设计中,针对给定组成尽可能实现最佳性能,对外骨骼结构变化进行了最佳利用。