Ashkanfar Ariyan, Langton David J, Joyce Thomas J
School of Mechanical and Systems Engineering, Newcastle University, Stephenson Building, Claremont Road, Newcastle Upon Tyne NE1 7RU, UK.
North Tees Explant Centre (NTEC), University Hospital of North Tees, North Tees, UK.
J Biomech. 2017 Oct 3;63:47-54. doi: 10.1016/j.jbiomech.2017.07.027. Epub 2017 Aug 10.
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.
全髋关节置换术(THR)锥形连接处产生的颗粒碎片会导致人工髋关节失效。股骨头和股骨干耳轴的锥形表面通常加工至一定粗糙度以增强固定。然而,这些表面的粗糙度对该设计的固定、磨损以及临床结果的影响在很大程度上尚不清楚。在本研究中,我们探讨了带有微槽的耳轴表面处理是否(1)能改善固定效果,以及(2)降低THR锥形连接处的磨损率。我们使用THR的三维有限元(FE)模型,首先研究表面光滑的钴铬合金股骨头与(1)微槽和(2)光滑的钛制耳轴表面配合时的初始固定效果。其次,我们使用有限元计算磨损模型比较各模型之间的磨损演变情况,然后根据取出的股骨头锥形表面的磨损测量结果进行验证。结果发现,锥形连接处的固定对于光滑连接件来说更好。在700万次载荷循环的计算机模拟分析中,与带有微槽耳轴配合的股骨头的线性磨损深度和总材料损失分别高出约3.2倍和1.4倍。因此得出结论,光滑的锥形和耳轴表面将在锥形连接处提供更好的固定,并降低体积磨损率。