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Homogenized stiffness matrices for mineralized collagen fibrils and lamellar bone using unit cell finite element models

机译:使用晶胞有限元模型的矿化胶原蛋白原纤维和层状骨的均质刚度矩阵

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Mineralized collagen fibrils have been usually analyzed like a two-phase composite material where crystals are considered as platelets that constitute the reinforcement phase. Different models have been used to describe the elastic behavior of the material. In this work, it is shown that when HalpinCTsai equations are applied to estimate elastic constants from typical constituent properties, not all crystal dimensions yield a model that satisfy thermodynamic restrictions. We provide the ranges of platelet dimensions that lead to positive definite stiffness matrices. On the other hand, a finite element model of a mineralized collagen fibril unit cell under periodic boundary conditions is analyzed. By applying six canonical load cases, homogenized stiffness matrices are numerically calculated. Results show a monoclinic behavior of the mineralized collagen fibril. In addition, a 5-layer lamellar structure is also considered where crystals rotate in adjacent layers of a lamella. The stiffness matrix of each layer is calculated applying Lekhnitskii transformations, and a new finite element model under periodic boundary conditions is analyzed to calculate the homogenized3Danisotropic stiffness matrix of a unit cell of lamellar bone. Results are compared with the rule-of-mixtures showing in general good agreement.
机译:通常分析矿化的胶原纤维,就像两相复合材料一样,其中晶体被视为构成增强相的血小板。已经使用不同的模型来描述材料的弹性行为。在这项工作中,它表明,当应用HalpinCTsai方程从典型的组成性质估算弹性常数时,并非所有的晶体尺寸都能产生一个满足热力学限制的模型。我们提供了导致正定刚度矩阵的血小板尺寸范围。另一方面,分析了在周期性边界条件下矿化的胶原原纤维晶胞的有限元模型。通过应用六个规范的荷载工况,数值计算了均质的刚度矩阵。结果显示矿化的胶原原纤维的单斜行为。另外,还考虑了五层的层状结构,其中晶体在层的相邻层中旋转。应用Lekhnitskii变换计算每层的刚度矩阵,并分析周期性边界条件下的新有限元模型,以计算层状骨晶胞的均质3D各向异性刚度矩阵。将结果与总体规则一致的混合规则进行比较。

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