Wang Xiaohan, Li Dongxu
College of Aerospace Science and Engineering, National University of Defense Technology, Changsha 410073, China.
Materials (Basel). 2020 Jan 31;13(3):636. doi: 10.3390/ma13030636.
Mimicking natural structures has been highly pursued recently in composite structure design to break the bottlenecks in the mechanical properties of the traditional structures. Bone has a remarkable comprehensive performance of strength, stiffness and toughness, due to the intricate hierarchical microstructures and the sacrificial bonds within the organic components. Inspired by the strengthening and toughening mechanisms of cortical bone, a new biomimetic composite structure, with a designed progressive breakable internal construction mimicking the sacrificial bond, is proposed in this paper. Combining the bio-composite staggered plate structure with the sacrificial bond-mimicking construction, our new structure can realize tunable stiffness and superior toughness. We established the constitutive model of the representative unit cell of our new structure, and investigated its mechanical properties through theoretical analysis, as well as finite element modeling (FEM) and simulation. Two theoretical relations, respectively describing the elastic modulus decline ratio and the unit cell toughness promotion, are derived as functions of the geometrical parameters and the material parameters, and validated by simulation. We hope that this work can lay the foundation for the stiffness tunable and high toughness biomimetic composite structure design, and provide new ideas for the development of sacrificial bond-mimicking strategies in bio-inspired composite structures.
近年来,在复合结构设计中,模仿自然结构一直是备受追求的目标,旨在突破传统结构力学性能的瓶颈。由于其复杂的层次微观结构以及有机成分中的牺牲键,骨骼具有出色的强度、刚度和韧性综合性能。受皮质骨增强增韧机制的启发,本文提出了一种新型仿生复合结构,其设计了一种渐进式可破坏内部结构,模仿牺牲键。将生物复合交错板结构与模仿牺牲键的结构相结合,我们的新结构能够实现可调刚度和卓越韧性。我们建立了新结构代表性单胞的本构模型,并通过理论分析以及有限元建模(FEM)和模拟研究了其力学性能。分别推导了描述弹性模量下降率和单胞韧性提升的两个理论关系,作为几何参数和材料参数的函数,并通过模拟进行了验证。我们希望这项工作能够为刚度可调且高韧性的仿生复合结构设计奠定基础,并为生物启发复合结构中模仿牺牲键策略的发展提供新思路。