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假体柄头-干界面微动与弯曲刚性的相关性研究

Influence of flexural rigidity on micromotion at the head-stem taper interface of modular hip prostheses.

机构信息

Institute of Biomechanics, TUHH Hamburg University of Technology, Denickestraße 15, 21073 Hamburg Germany.

Institute of Biomechanics, TUHH Hamburg University of Technology, Denickestraße 15, 21073 Hamburg Germany.

出版信息

Med Eng Phys. 2019 Jun;68:1-10. doi: 10.1016/j.medengphy.2019.03.020. Epub 2019 Apr 10.

Abstract

Fretting corrosion as one reason for failure of modular hip prostheses has been associated with micromotion at the head taper junction. Historically the taper diameter was reduced to improve the range of motion of the hip joint. In combination with other developments, this was accompanied by increased observations of taper fretting, possibly due to the reduced flexural rigidity of smaller tapers. The aim of the study was to investigate how the flexural rigidity of tapers influences the amount of micromotion at the head taper junction. Three different stem and two different taper designs were manufactured. Experimental testing was performed using three different activity levels with peak loads representing walking, stair climbing and stumbling. The relative motion at the head-stem taper was measured in six degrees of freedom. Micromotion was obtained by subtraction of the elastic deformation derived from monoblock and finite element analysis. Less rigid tapers lead to increased micromotion between the head and stem, enlarging the risk of fretting corrosion. The influence of the stem design on micromotion is secondary to taper design. Manufacturers should consider stiffer taper designs to reduce micromotion within the head taper junction.

摘要

微动腐蚀是导致模块化髋关节假体失效的一个原因,其与头锥连接处的微动有关。从历史上看,为了改善髋关节的活动范围,减小了锥度直径。与其他发展相结合,这伴随着锥面微动的观察增加,可能是由于较小锥度的弯曲刚性降低。该研究的目的是研究锥度的弯曲刚性如何影响头锥连接处的微动程度。制造了三种不同的柄和两种不同的锥度设计。使用三种不同的活动水平进行了实验测试,峰值载荷代表行走、爬楼梯和绊倒。在六个自由度上测量头柄锥度的相对运动。通过从整体和有限元分析中得出的弹性变形减去获得微动。刚性较小的锥度会导致头和柄之间的微动增加,增加微动腐蚀的风险。柄设计对微动的影响次于锥度设计。制造商应考虑更刚性的锥度设计,以减少头锥连接处的微动。

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