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在现代全髋关节置换术中,头-柄组合件连接界面的表面形貌与锥度不匹配对装配过程中头-柄界面接触力学的影响

Interaction of surface topography and taper mismatch on head-stem modular junction contact mechanics during assembly in modern total hip replacement.

机构信息

Department of Orthopedic Surgery, Rush University Medical Center, Chicago, Illinois, USA.

出版信息

J Orthop Res. 2023 Feb;41(2):418-425. doi: 10.1002/jor.25357. Epub 2022 May 13.

Abstract

Implant failure due to fretting corrosion at the head-stem modular junction is an increasing problem in modular total hip arthroplasty. The effect of varying microgroove topography on modular junction contact mechanics has not been well characterized. The aim of this study was to employ a novel, microgrooved finite element (FEA) model of the hip taper interface and assess the role of microgroove geometry and taper mismatch angle on the modular junction mechanics during assembly. A two-dimensional, axisymmetric FEA model was created using a modern 12/14 taper design of a CoCrMo femoral head taper and Ti6Al4V stem taper. Microgrooves were modeled at the contacting interface of the tapers and varied based on height and spacing measurements obtained from a repository of measured retrievals. Additionally, taper angular mismatch between the head and stem was varied to simulate proximal- and distal-locked engagement. Forty simulations were conducted to parametrically evaluate the effects of microgroove surface topography and angular mismatch on predicted contact area, contact pressure, and equivalent plastic strain. Multiple linear regression analysis was highly significant (p < 0.001; R  > 0.74) for all outcome variables. The regression analysis identified microgroove geometry on the head taper to have the greatest influence on modular junction contact mechanics. Additionally, there was a significant second order relationship between both peak contact pressure (p < 0.001) and plastic strain (p < 0.001) with taper mismatch angle. These modeling techniques will be used to identify the implant parameters that maximize taper interference strength via large in-silico parametric studies.

摘要

由于头部-柄体连接部的微动腐蚀而导致的植入物失效是模块化全髋关节置换术中日益严重的问题。不同微形貌在连接部接触力学中的作用尚未得到很好的描述。本研究的目的是采用一种新颖的、带微形貌的髋关节锥度界面有限元(FEA)模型,并评估微形貌几何形状和锥度不匹配角度对装配过程中连接部力学的影响。采用现代 12/14 锥度设计的 CoCrMo 股骨头锥度和 Ti6Al4V 柄锥度创建了二维、轴对称的 FEA 模型。在锥度的接触界面上模拟微形貌,并根据从大量测量回收中获得的高度和间距测量值进行变化。此外,还改变了头和柄之间的锥度角度不匹配,以模拟近端和远端锁定配合。进行了 40 次模拟,以参数化评估微形貌表面形貌和角度不匹配对预测接触面积、接触压力和等效塑性应变的影响。多元线性回归分析对所有结果变量均具有高度显著性(p < 0.001;R  > 0.74)。回归分析表明,头部锥度上的微形貌对连接部接触力学的影响最大。此外,峰值接触压力(p < 0.001)和塑性应变(p < 0.001)与锥度不匹配角度之间存在显著的二阶关系。这些建模技术将用于通过大量的计算机参数研究确定最大限度地提高锥度干扰强度的植入物参数。

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本文引用的文献

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What Factors Drive Taper Corrosion?是什么因素导致了退刀腐蚀?
J Arthroplasty. 2018 Sep;33(9):2707-2711. doi: 10.1016/j.arth.2018.03.055. Epub 2018 Mar 30.

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