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A combined experimental and finite element approach to analyse the fretting mechanism of the head–stem taper junction in total hip replacement

机译:实验与有限元相结合的方法来分析全髋关节置换术中头干锥度关节的微动机制

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摘要

Fretting corrosion at the taper interface of modular hip implants has been implicated as a possible cause of implant failure. This study was set up to gain more insight in the taper mechanics that lead to fretting corrosion. The objectives of this study therefore were (1) to select experimental loading conditions to reproduce clinically relevant fretting corrosion features observed in retrieved components, (2) to develop a finite element model consistent with the fretting experiments and (3) to apply more complicated loading conditions of activities of daily living to the finite element model to study the taper mechanics. The experiments showed similar wear patterns on the taper surface as observed in retrievals. The finite element wear score based on Archard’s law did not correlate well with the amount of material loss measured in the experiments. However, similar patterns were observed between the simulated micromotions and the experimental wear measurements. Although the finite element model could not be validated, the loading conditions based on activities of daily living demonstrate the importance of assembly load on the wear potential. These findings suggest that finite element models that do not incorporate geometry updates to account for wear loss may not be appropriate to predict wear volumes of taper connections.
机译:模块化髋关节植入物的锥度界面处的微动腐蚀被认为是植入物失效的可能原因。进行这项研究的目的是对导致微动腐蚀的锥度力学有更多的了解。因此,本研究的目标是(1)选择实验加载条件以重现在回收的部件中观察到的临床相关的微动腐蚀特征;(2)建立与微动实验一致的有限元模型;(3)应用更复杂的加载日常生活活动的条件以有限元模型来研究锥度力学。实验表明,在锥形表面上的磨损模式与取回过程中观察到的类似。基于阿卡德定律的有限元磨损评分与实验中测得的材料损失量没有很好的相关性。但是,在模拟的微运动和实验磨损测量之间观察到了相似的模式。尽管不能验证有限元模型,但基于日常生活活动的载荷条件证明了装配载荷对潜在磨损的重要性。这些发现表明,没有结合几何更新来解决磨损损失的有限元模型可能不适用于预测锥度连接的磨损量。

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