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有限元分析研究在日常活动中的实际力和力矩作用下,髋关节植入物的头颈部界面的力学响应:第 2 部分。

A finite element study on the mechanical response of the head-neck interface of hip implants under realistic forces and moments of daily activities: Part 2.

机构信息

The Medical Device Research Institute, Flinders University, Adelaide, Australia.

出版信息

J Mech Behav Biomed Mater. 2018 Jan;77:164-170. doi: 10.1016/j.jmbbm.2017.08.038. Epub 2017 Sep 7.

Abstract

A finite element model was developed to investigate the effect of loading regimes caused by various daily activities on the mechanical behaviour of the head-neck taper junction in modular hip replacements. The activities included stair up, stair down, sit to stand, stand to sit, one leg standing and knee bending. To present the real mechanical environment of the junction, in addition to the force components, the frictional moments produced by the frictional sliding of the head and cup were applied to a CoCr/CoCr junction having a 12/14 taper with a proximal mismatch angle of 0.024°. This study revealed that stair up with the highest fretting work per unit of length (1.62 × 10J/m) was the most critical activity, while knee bending and stand to sit with 1.96 × 10J/m were the least critical activities. For all the activities, the superolateral region of the neck was identified as the most critical region in terms of having larger values of fretting work per unit of area. This study showed also that the relative micro-motions and contact stresses occurring at the head-neck interface for all the studied activities are mostly in the range of 0-38µm and 0-350MPa, respectively. These ranges may be accordingly employed for conducting relevant in-vitro tests to more realistically represent the mechanical environment of taper junctions with the same materials and geometry studied in this work.

摘要

建立了一个有限元模型,以研究各种日常活动引起的加载状态对模块化髋关节置换头-颈锥度连接的力学行为的影响。这些活动包括上下楼梯、坐下站起、站立坐下、单腿站立和膝盖弯曲。为了呈现连接点的真实力学环境,除了力分量外,还将头和杯之间的摩擦滑动产生的摩擦力矩施加到具有 12/14 锥度和近端不匹配角为 0.024°的 CoCr/CoCr 连接点上。本研究表明,上下楼梯的单位长度磨损功最高(1.62×10J/m),是最关键的活动,而膝盖弯曲和站立坐下的单位长度磨损功最低(1.96×10J/m)。对于所有活动,颈的超外侧区域在单位面积磨损功方面被确定为最关键的区域。本研究还表明,在所有研究活动中,头-颈界面发生的相对微动和接触应力主要在 0-38µm 和 0-350MPa 范围内。这些范围可用于进行相关的体外测试,以更真实地代表具有相同材料和几何形状的锥度连接点的力学环境。

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