Nukala Phani Kumar V V, Simunović Srdan
Computer Science and Mathematics Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831-6164, USA.
Phys Rev E Stat Nonlin Soft Matter Phys. 2005 Oct;72(4 Pt 1):041919. doi: 10.1103/PhysRevE.72.041919. Epub 2005 Oct 19.
Natural biological materials such as nacre (or mother-of-pearl), exhibit phenomenal fracture strength and toughness properties despite the brittle nature of their constituents. For example, nacre's work of fracture is three orders of magnitude greater than that of a single crystal of its constituent mineral. This study investigates the fracture properties of nacre using a simple discrete lattice model based on continuous damage random thresholds fuse network. The discrete lattice topology of the proposed model is based on nacre's unique brick and mortar microarchitecture, and the mechanical behavior of each of the bonds in the discrete lattice model is governed by the characteristic modular damage evolution of the organic matrix that includes the mineral bridges between the aragonite platelets. The analysis indicates that the excellent fracture properties of nacre are a result of their unique microarchitecture, repeated unfolding of protein molecules (modular damage evolution) in the organic polymer, and the presence of fiber bundle of mineral bridges between the aragonite platelets. The numerical results obtained using this simple discrete lattice model are in excellent agreement with the previously obtained experimental results, such as nacre's stiffness, tensile strength, and work of fracture.
天然生物材料,如珍珠层(或珍珠母),尽管其成分具有脆性,但却展现出非凡的断裂强度和韧性。例如,珍珠层的断裂功比其组成矿物的单晶高出三个数量级。本研究使用基于连续损伤随机阈值熔丝网络的简单离散晶格模型来研究珍珠层的断裂特性。所提出模型的离散晶格拓扑结构基于珍珠层独特的砖-灰泥微结构,离散晶格模型中每个键的力学行为由有机基质的特征模块化损伤演化控制,该有机基质包括文石片晶之间的矿物桥。分析表明,珍珠层优异的断裂性能源于其独特的微结构、有机聚合物中蛋白质分子的重复展开(模块化损伤演化)以及文石片晶之间矿物桥纤维束的存在。使用这个简单离散晶格模型获得的数值结果与先前获得的实验结果,如珍珠层的刚度、拉伸强度和断裂功,高度吻合。