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纳米尺度下骨的刚度和强度建模

Modeling of Stiffness and Strength of Bone at Nanoscale.

作者信息

Abueidda Diab W, Sabet Fereshteh A, Jasiuk Iwona M

机构信息

Department of Mechanical Science and Engineering, University of Illinois at Urbana-Champaign, Mechanical Engineering Building, 1206 W Green Street, Urbana, IL 61801 e-mail:

出版信息

J Biomech Eng. 2017 May 1;139(5). doi: 10.1115/1.4036314.

Abstract

Two distinct geometrical models of bone at the nanoscale (collagen fibril and mineral platelets) are analyzed computationally. In the first model (model I), minerals are periodically distributed in a staggered manner in a collagen matrix while in the second model (model II), minerals form continuous layers outside the collagen fibril. Elastic modulus and strength of bone at the nanoscale, represented by these two models under longitudinal tensile loading, are studied using a finite element (FE) software abaqus. The analysis employs a traction-separation law (cohesive surface modeling) at various interfaces in the models to account for interfacial delaminations. Plane stress, plane strain, and axisymmetric versions of the two models are considered. Model II is found to have a higher stiffness than model I for all cases. For strength, the two models alternate the superiority of performance depending on the inputs and assumptions used. For model II, the axisymmetric case gives higher results than the plane stress and plane strain cases while an opposite trend is observed for model I. For axisymmetric case, model II shows greater strength and stiffness compared to model I. The collagen-mineral arrangement of bone at nanoscale forms a basic building block of bone. Thus, knowledge of its mechanical properties is of high scientific and clinical interests.

摘要

对纳米尺度下两种不同的骨几何模型(胶原纤维和矿物质片层)进行了计算分析。在第一个模型(模型I)中,矿物质在胶原基质中以交错方式周期性分布,而在第二个模型(模型II)中,矿物质在胶原纤维外部形成连续层。使用有限元(FE)软件abaqus研究了这两种模型在纵向拉伸载荷下所代表的纳米尺度骨的弹性模量和强度。分析在模型的各个界面采用牵引-分离定律(粘结表面建模)来考虑界面分层。考虑了两种模型的平面应力、平面应变和轴对称版本。发现模型II在所有情况下都比模型I具有更高的刚度。对于强度,根据所使用的输入和假设,两种模型交替表现出性能优势。对于模型II,轴对称情况给出的结果高于平面应力和平面应变情况,而模型I则观察到相反的趋势。对于轴对称情况,模型II与模型I相比显示出更大的强度和刚度。纳米尺度下骨的胶原-矿物质排列构成了骨的基本构建单元。因此,了解其力学性能具有很高的科学和临床意义。

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