4.5 Article

Dynamic Modulus of Staggered Nanocomposites With Different Distributions of Platelets Considering the Interface Stress Effect

出版社

ASME
DOI: 10.1115/1.4051012

关键词

staggered nanocomposites; platelet layout; interface effect; tension region; dynamic properties

资金

  1. National Natural Science Foundation of China [12072011, 11872008]
  2. National Key Research and Development Program of China [2017YFA0207800]
  3. Seed Foundation of Beijing Advanced Discipline Center for Unmanned Aircraft System [ADBUAS-2019-SP-05]

向作者/读者索取更多资源

Biological staggered composites, such as bone, nacre, and dentin, possess superior energy dissipation capacity compared to conventional materials. Various staggered microstructures are observed, including symmetric and asymmetric staggered structures with nanoscale platelet thickness. A tension-shear chain model with tension region (TR) is proposed to investigate the synergy of platelet layouts, interface effects, and tension region. Optimal dynamic properties of staggered nanocomposites can be achieved by designing structures with suitable platelet layouts and distribution.
Biological staggered composites, like bone, nacre, and dentin, possess the superior capacity of energy dissipation than that of conventional materials. In these nanocomposites, different staggered microstructures are widely observed, for example, symmetric staggered structures with regular platelet layouts and asymmetric staggered structures with offset and stairwise platelet layouts. In addition, the thickness of platelets in these biological materials is at the nanoscale, and the distance between the adjacent ends of platelets is large enough in staggered structures, which indicates the interface effect and tension region (TR) cannot be ignored in staggered nanocomposites. In order to investigate the possible synergistic effect of the platelet layouts, interface effects, and tension region on the dynamic properties of the nanocomposites, a generalized tension-shear chain model (TSCM) with TR is proposed. According to the analytical solutions derived, the staggered nanocomposites with optimal structures can be designed to obtain superior energy dissipation capacity. Considering different loading frequencies in natural environment, the optimal dynamic properties of nacre can be achieved with a regular staggering platelet distribution, while the optimal dynamic properties of bone can be achieved when the number of periodic stairwise staggering platelets is appropriately smaller. These optimal platelet layouts in nacre and bone are consistent with the experimental results reported in many literatures. Therefore, the energy dissipation capacity of staggered nanocomposites can be highly improved, based on the profound understanding of the damping mechanism in biological nanocomposites.

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