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死后取出和实验室制备标本中骨水泥界面的多轴加载细观力学

Multi-axial loading micromechanics of the cement-bone interface in postmortem retrievals and lab-prepared specimens.

机构信息

SUNY Upstate Medical University, Syracuse, NY, USA.

出版信息

J Mech Behav Biomed Mater. 2011 Apr;4(3):366-74. doi: 10.1016/j.jmbbm.2010.11.004. Epub 2010 Nov 16.

Abstract

Maintaining adequate fixation between cement and bone is important for successful long term survival of cemented total joint replacements. Mixed-mode loading conditions (combination of tension/compression and shear) are present during in vivo loading, but the micromotion response of the interface to these conditions is not fully understood. Non-destructive, multi-axial loading experiments were conducted on laboratory prepared (n=6) and postmortem (n=6) human cement-bone interfaces. Specimens were mounted in custom loading discs and loaded at 0°, 30°, 60°, and 90° relative to the interface plane where 0° represents normal loading to the interface, and 90° represents shear loading along the longitudinal axis of the femur. Axial compliance did not depend on loading angle for laboratory prepared (p=0.96) or postmortem specimens (p=0.62). The cement-bone interface was more compliant under tensile than compressive loading at the 0° loading angle only (p=0.024). The coupled transverse to axial compliance ratio, which is a measure of the coupled motion, was small for laboratory prepared (0.115 ± 0.115) and postmortem specimens (0.142 ± 0.101). There was a moderately strong inverse relationship between interface compliance and contact index (r(2)=0.65). From a computational modeling perspective, the results of the current study support the concept that the cement-bone interface could be numerically implemented as a compliant layer with the same initial stiffness in tension and shear directions. The magnitude of the compliance could be modified to simulate immediate post-operative conditions (using laboratory prepared data set) or long-term remodeling (using postmortem data set).

摘要

保持水泥与骨之间的充分固定对于成功的水泥固定全关节置换物的长期存活是非常重要的。在体内加载过程中存在混合模式加载条件(拉伸/压缩和剪切的组合),但界面对此类条件的微动响应尚不完全了解。在实验室制备的(n=6)和死后(n=6)的人水泥-骨界面上进行了非破坏性、多轴加载实验。标本安装在定制的加载盘上,并以 0°、30°、60°和 90°相对于界面平面的角度加载,其中 0°表示对界面的正常加载,90°表示沿股骨长轴的剪切加载。对于实验室制备的标本(p=0.96)或死后标本(p=0.62),轴向柔度不依赖于加载角度。在仅 0°加载角度下,水泥-骨界面在拉伸载荷下比压缩载荷更具柔度(p=0.024)。作为耦合运动的度量的横向与轴向柔度的耦合比,对于实验室制备的标本(0.115±0.115)和死后标本(0.142±0.101)都很小。界面柔度与接触指数之间存在中度强的负相关关系(r²=0.65)。从计算建模的角度来看,当前研究的结果支持这样的概念,即水泥-骨界面可以数值上实现为具有相同初始拉伸和剪切方向刚度的柔度层。柔度的大小可以进行修改以模拟术后即刻条件(使用实验室制备的数据集)或长期重塑条件(使用死后数据集)。

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