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Does a micro-grooved trunnion stem surface finish improve fixation and reduce fretting wear at the taper junction of total hip replacements? A finite element evaluation.

机译:微沟槽的耳轴柄表面光洁度是否能改善整体髋关节置换的锥形连接处的固定并减少微动磨损?有限元评估。

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摘要

The generation of particulate debris at the taper junction of total hip replacements (THRs), can cause failure of the artificial hip. The taper surfaces of femoral heads and trunnions of femoral stems are generally machined to a certain roughness to enhance fixation. However, the effect of the surface roughness of these surfaces on the fixation, wear and consequently clinical outcomes of the design is largely unknown. In this study, we asked whether a micro-grooved trunnion surface finish (1) improves the fixation and (2) reduces the wear rate at the taper junction of THRs. We used 3D finite element (FE) models of THRs to, firstly, investigate the effect of initial fixation of a Cobalt-Chromium femoral head with a smooth taper surface mated with a Titanium (1) micro-grooved and (2) smooth, trunnion surface finishes. Secondly, we used a computational FE wear model to compare the wear evolution between the models, which was then validated against wear measurements of the taper surface of explanted femoral heads. The fixation at the taper junction was found to be better for the smooth couplings. Over a 7 million load cycle analysis in-silico, the linear wear depth and the total material loss was around 3.2 and 1.4 times higher for the femoral heads mated with micro-grooved trunnions. It was therefore concluded that smooth taper and trunnion surfaces will provide better fixation at the taper junction and reduce the volumetric wear rates.
机译:在全髋关节置换术(THR)的锥形交界处产生的微粒碎片会导致人造髋关节衰竭。通常将股骨头的锥形表面和股骨柄的耳轴加工成一定的粗糙度,以增强固定效果。但是,这些表面的表面粗糙度对固定,磨损以及设计的临床结果的影响在很大程度上尚不清楚。在这项研究中,我们问微沟槽耳轴表面光洁度(1)是否可以改善固定,而(2)可以降低THRs锥形连接处的磨损率。我们使用THR的3D有限元(FE)模型,首先研究钴-铬股骨头的初始固定以及光滑的锥度表面与钛(1)微沟槽和(2)光滑耳轴的配合的效果。表面处理。其次,我们使用计算的有限元磨损模型来比较模型之间的磨损演变,然后针对外植股骨头锥形表面的磨损测量结果进行了验证。发现在锥形连接处的固定对于光滑的联轴器更好。在进行了700万次硅片载荷循环分析后,与微槽耳轴配合使用的股骨头的线性磨损深度和总材料损失分别高出3.2倍和1.4倍。因此得出的结论是,光滑的锥面和耳轴表面将在锥面连接处提供更好的固定,并降低体积磨损率。

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