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Hierarchical modelling of in situ elastic deformation of human enamel based on photoelastic and diffraction analysis of stresses and strains

机译:基于光弹性和应力和应变衍射分析的人类牙釉质原位弹性变形的层次建模

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摘要

Human enamel is a typical hierarchical mineralized tissue with a two-level composite structure. To date, few studies have focused on how the mechanical behaviour of this tissue is affected by both the rod orientation at the microscale and the preferred orientation of mineral crystallites at the nanoscale. In this study, wide-angle X-ray scattering was used to determine the internal lattice strain response of human enamel samples (with differing rod directions) as a function of in situ uniaxial compressive loading. Quantitative stress distribution evaluation in the birefringent mounting epoxy was performed in parallel using photoelastic techniques. The resulting experimental data was analysed using an advanced multiscale Eshelby inclusion model that takes into account the two-level hierarchical structure of human enamel, and reflects the differing rod directions and orientation distributions of hydroxyapatite crystals. The achieved satisfactory agreement between the model and the experimental data, in terms of the values of multidirectional strain components under the action of differently orientated loads, suggests that the multiscale approach captures reasonably successfully the structure-property relationship between the hierarchical architecture of human enamel and its response to the applied forces. This novel and systematic approach can be used to improve the interpretation of the mechanical properties of enamel, as well as of the textured hierarchical biomaterials in general.
机译:人牙釉质是典型的具有两级复合结构的分层矿化组织。迄今为止,很少有研究集中于这种组织的机械行为如何受到微观尺度的棒取向和纳米尺度矿物微晶的优选取向的影响。在这项研究中,使用广角X射线散射来确定人牙釉质样品(具有不同棒方向)的内部晶格应变响应与原位单轴压缩载荷的关系。使用光弹性技术并行执行双折射安装环氧树脂中的定量应力分布评估。使用高级多尺度Eshelby夹杂模型分析所得的实验数据,该模型考虑了人类牙釉质的两级分层结构,并反映了羟基磷灰石晶体的不同棒方向和取向分布。就不同方向的载荷作用下的多向应变分量的值而言,模型和实验数据之间取得了令人满意的一致性,这表明多尺度方法可以合理地成功地捕获人类牙釉质和牙釉质的分层结构之间的结构-属性关系。它对施加力的反应。这种新颖而系统的方法可用于改善对搪瓷以及一般具有纹理的分层生物材料的机械性能的解释。

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