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皮质骨的纳米压痕响应:亚表面空洞的依赖性。

Nanoindentation response of cortical bone: dependency of subsurface voids.

机构信息

Department of Structural Engineering, Norwegian University of Science and Technology (NTNU), Trondheim, Norway.

出版信息

Biomech Model Mechanobiol. 2017 Oct;16(5):1599-1612. doi: 10.1007/s10237-017-0907-5. Epub 2017 Apr 19.

DOI:10.1007/s10237-017-0907-5
PMID:28424904
Abstract

Nanoindentation test results in the axial direction of mouse femurs were the basis for the current study. Although the majority of the nanoindentation curves showed a reasonable consistency, some curves showed a significantly softer response. Detailed investigation, using focused ion beam-scanning electron microscopy, provided that the softer response is due to subsurface cavities such as lacunae. Finite element models were developed to simulate the nanoindentation of mice femur cortical bone samples with and without the incorporation of a single lacuna underneath the bone surface. Based on the material parameters determined for the cavity-free tissue, numerical simulations were run for different cases of cavity size, shape, and location. Spherical cavities with different size were considered at different distances from the surface. The results showed that subsurface cavities can lead to 50% higher indentation compared to an indentation in cavity-free material. Continuing with ellipsoidal cavities with the center located on the load axis, the results showed a nonlinear dependency of ellipsoid shape. Hence, the shape of the cavity is important for the nanoindentation response. The influence of horizontal and vertical offsets of spherical cavities was studied, thereby the results showed that an increasing horizontal offset caused a decreasing influence of the vertical distance from the surface. In perspective, the present study provides information that may help to get deeper knowledge of nanoindentation load-displacement mechanism taking place in samples with subsurface cavities.

摘要

本研究以小鼠股骨轴向的纳米压痕测试结果为基础。虽然大多数纳米压痕曲线表现出相当一致的响应,但有些曲线显示出明显较软的响应。使用聚焦离子束-扫描电子显微镜进行的详细研究表明,较软的响应是由于亚表面空洞(如腔隙)所致。开发了有限元模型来模拟有和没有骨表面下单个腔隙的情况下小鼠股骨皮质骨样本的纳米压痕。基于无腔隙组织确定的材料参数,针对不同的腔隙大小、形状和位置进行了数值模拟。在不同距离处考虑了具有不同尺寸的球形腔隙。结果表明,与无腔隙材料的压痕相比,亚表面腔隙可导致压痕增加 50%。对于位于载荷轴上的中心的椭圆形腔隙,结果显示出与椭圆形状的非线性依赖性。因此,腔隙的形状对纳米压痕响应很重要。研究了球形腔隙的水平和垂直偏移的影响,结果表明,水平偏移的增加导致表面垂直距离的影响减小。从长远来看,本研究提供的信息可能有助于更深入地了解在具有亚表面腔隙的样本中发生的纳米压痕载荷-位移机制。

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