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Effect of microseparation on contact mechanics in metal‐on‐metal hip replacements—A finite element analysis

机译:微观分离对金属对金属髋关节置换术中接触力学的影响-有限元分析

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摘要

Some early failures of metal‐on‐metal (MoM) hip replacements associated with elevated wear have caused concerns for the use of this bearing combination. Simulator studies have shown that microseparation and its associated rim contact and edge loading may produce the most severe wear in MoM bearings. It is generally recognized that this high wear can be attributed to the high contact stress of the head on the rim of the cup. In this study, an improved finite element contact model that incorporates an elastic‐perfectly plastic material property for cobalt‐chrome alloy of the metal bearing was developed in an attempt to provide an accurate prediction of the stress and strain for the rim contact. The effects of the microseparation displacement (0.1−2 mm), cup inclination angle (25−65°) and cup rim radius (0.5−4 mm) on the contact stress/strain were investigated. The results show that a translational displacement >0.1 mm under a load >0.5 kN can produce a highly concentrated contact stress at the surface of the cup rim which can lead to plastic deformation. This study also suggests that the magnitude of translational displacement was the major factor that determined the severity of the contact conditions and level of stress and strain under microseparation conditions. Future studies will address the effect of surgical translational and rotational malposition and component design on the magnitude of microseparation, contact stress and strain and severity of wear. © 2014 The Authors. Journal of Biomedical Materials Research Part B: Applied Biomaterials Published by Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater, 103B: 1312–1319, 2015.
机译:金属对金属(MoM)髋关节置换术的某些早期故障与磨损增加有关,引起了对该轴承组合的使用的担忧。模拟器研究表明,微分离及其相关的轮辋接触和边缘载荷可能在MoM轴承中产生最严重的磨损。通常认为,这种高磨损可归因于杆头在杯体边缘上的高接触应力。在这项研究中,开发了一种改进的有限元接触模型,该模型结合了用于金属轴承的钴铬合金的完全弹性塑性材料的性能,试图为轮辋接触的应力和应变提供准确的预测。研究了微观分离位移(0.1-2 mm),杯倾斜角(25-65°)和杯边缘半径(0.5-4 mm)对接触应力/应变的影响。结果表明,在大于0.5 kN的载荷下,大于0.1 mm的平移位移会在杯缘表面产生高度集中的接触应力,从而导致塑性变形。该研究还表明,平移位移的大小是决定接触条件的严重程度以及微分离条件下应力和应变水平的主要因素。未来的研究将探讨外科平移和旋转位置不正确以及部件设计对微分离幅度,接触应力,应变和磨损严重性的影响。 ©2014作者。生物医学材料研究杂志B部分:应用生物材料,由Wiley Periodicals,Inc.出版。J Biomed Mater Res部分B:Appl Biomater,103B:1312-1319,2015年。

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