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A computational approach to fretting wear prediction at the head-stem taper junction of total hip replacements

机译:全髋关节置换术的头干锥度连接处微动磨损预测的一种计算方法

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摘要

Wear is one of the main reasons for failure of modular total hip replacements. Recent evidence suggests that fretting wear occurs at the taper junction which provides fixation between the prosthesis femoral head and stem components. The fine metallic wear debris that is released can lead to adverse soft-tissue reactions which can necessitate a revision surgery. The present study proposes a computational methodology utilising an energy wear law and a 3D finite element model to predict fretting wear at the taper junction. The method is novel in that it simulates the weakening of the initial taper ‘fixation’ (created at impaction of the head onto the stem in surgery) due to the wearing process. The taper fixation is modelled using a contact analysis with overlapped meshes at the taper junction. The reduction in fixation is modelled by progressive removal of the overlap between components based on calculated wear. The fretting wear analysis approach has been shown to model the evolution of wear effectively; however, it has been shown that accurate, quantitative values for wear are critically dependant on mesh refinement, wear scaling factor and fraction, wear coefficient used and knowledge of the device loading history. The method has been implemented with a 3D finite element model of the taper junction of a commercial total hip replacement. This has been used to determine taper wear patterns, wear damage and wear rates which have been shown to be consistant with those found from observation and measurement of retrieved prostheses. The numerical method could be used to consider the effect of design changes and clinical technique on subsequent fretting wear in modular prosthetic devices.
机译:磨损是模块化全髋关节置换失败的主要原因之一。最近的证据表明,微动磨损发生在锥形连接处,从而在假体股骨头和干部件之间提供固定。释放出的细小金属屑会导致不良的软组织反应,这可能需要进行翻修手术。本研究提出了一种利用能量磨损定律和3D有限元模型来预测锥度接头处的微动磨损的计算方法。该方法是新颖的,因为它模拟了由于佩戴过程而导致的初始锥度“固定”(在手术中头部撞击到茎上时产生的)的减弱。使用接触分析对锥度固定进行建模,锥度交界处的网格重叠。通过根据计算出的磨损逐渐消除零件之间的重叠来模拟固定的减少。微动磨损分析方法已被证明可以有效地模拟磨损的演变。然而,已经表明,精确的磨损定量值主要取决于网格的细化,磨损比例因子和分数,所使用的磨损系数以及设备加载历史的知识。该方法已通过商业全髋关节置换的锥形连接的3D有限元模型实现。这已被用来确定锥度磨损模式,磨损损伤和磨损率,这些磨损率和磨损率与从观察和测量的修复假体中发现的一致。数值方法可用于考虑设计变更和临床技术对模块化假体设备后续微动磨损的影响。

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