Effect of geometrical structure variations on strength and damage onset of cortical bone using multi-scale cohesive zone based finite element method.

A. Atthapreyangkul, M. Hoffman, G. Pearce, O. Standard
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引用次数: 1

Abstract

Three-dimensional multi-scale finite element models were designed to examine the effects of geometrical structure variations on the damage onset in cortical bone at multiple structural scales. A cohesive zone finite element approach, together with anisotropic damage initiation criteria, is used to predict the onset of damage. The finite element models are developed to account for the onset of microdamage from the microscopic length scales consisting of collagen fibres, to the macroscopic level consisting of osteons and the Haversian canals. Numerical results indicated that the yield strain at the initiation of microcracks is independent of variations in the local mineral volume fraction at each structural scale. Further, the yield strain and strength properties of cortical bone are dependent on its structural anisotropy and hierarchical structure. A positive correlation is observed between bone strength and mineral content at each length scale.
基于多尺度内聚区的有限元方法研究几何结构变化对皮质骨强度和损伤发生的影响。
设计三维多尺度有限元模型,研究几何结构变化对皮质骨多尺度损伤发生的影响。结合各向异性损伤起裂准则,采用黏聚区有限元方法预测损伤起裂。有限元模型的发展是为了解释微损伤的开始,从由胶原纤维组成的微观长度尺度,到由骨和哈弗氏管组成的宏观水平。数值结果表明,微裂纹起始时的屈服应变与各结构尺度下局部矿物体积分数的变化无关。此外,皮质骨的屈服应变和强度特性取决于其结构的各向异性和层次结构。在每个长度尺度上观察到骨强度与矿物质含量呈正相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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