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人体皮质骨在压缩和拉伸载荷下的损伤分析

Damage analysis of human cortical bone under compressive and tensile loadings.

作者信息

Maghami Ebrahim, Moore Jason P, Josephson Timothy O, Najafi Ahmad R

机构信息

Department of Mechanical Engineering and Mechanics, Drexel University, Philadelphia, Pennsylvania, USA.

出版信息

Comput Methods Biomech Biomed Engin. 2022 Feb;25(3):342-357. doi: 10.1080/10255842.2021.2023135. Epub 2022 Jan 11.

Abstract

Developing advanced fracture tools can increase the understanding of crack growth trajectories in human cortical bone. The present study investigates fracture micromechanics of human cortical bone under compressive and tensile loadings utilizing a phase field method. We construct two-dimensional finite element models from cortical microstructure of a human tibia cross section. We apply compression on the cortical bone models to create compressive microcracks. Then, we simulate the fracture of these models under tension to discover influential parameters on microcracks formation and post-yielding behavior. The results show that cement lines are susceptible sites to damage nucleation under compression rather than tension. The findings of this study also indicate a higher accumulation of initial damage (induced by compression) can lead to a lower microscopic stiffness as well as a less resistant material to damage initiation under tension. The simulations further indicate that the post-yielding properties (e.g., toughness) can be dependent on different variables such as morphological information of the osteons, the initial accumulation of microcracks, and the total length of cement lines.

摘要

开发先进的骨折工具可以增进对人类皮质骨中裂纹扩展轨迹的理解。本研究利用相场方法研究了人类皮质骨在压缩和拉伸载荷下的断裂细观力学。我们从人类胫骨横截面的皮质微观结构构建二维有限元模型。我们对皮质骨模型施加压缩以产生压缩微裂纹。然后,我们模拟这些模型在拉伸下的断裂,以发现对微裂纹形成和屈服后行为有影响的参数。结果表明,黏合线在压缩而非拉伸下是损伤成核的敏感部位。本研究的结果还表明,初始损伤(由压缩引起)的较高积累会导致较低的微观刚度以及在拉伸下对损伤起始的抵抗力较弱的材料。模拟进一步表明,屈服后性能(例如韧性)可能取决于不同变量,如骨单位的形态信息、微裂纹的初始积累以及黏合线的总长度。

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