Finite Element Analyses on Total Hip Arthroplasty DislocationMechanisms

M. Higa, H. Tanino, Yuta Yamagami, M. Abo, S. Kakunai
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Abstract

This study is aimed to calculate the range of motion of total hip arthroplasty (THA) until implant-to-implant impingement and dislocation occur, and to calculate resisting moments to dislocate the hip using non-linear finite element (FE) methods. To analyse the dislocation objectively and to clarify the distinction between implant-to-implant impingement and dislocation, three-dimensional FE models of hybrid THA components were generated. In this study, posterior dislocation-prone maneuvers such as flexion, adduction, internal rotation, and their combinations were analysed. The analyses were started with the femoral component oriented in a manner corresponding to the hip being flexed to the impingement occurrence angles at various internal rotation and adduction angles. The muscle forces were also considered by applying hip joint forces during the analyses. As results, the angles of internal rotation and adduction affected both impingement and dislocation angles of flexion. The flexion angles both at impingement and at dislocation decreased by increasing the internal rotation angles. Although the peak flexion moment todislocate the hip joint increased by increasing the internal rotation angle, it didn't always increase with an increase in the adduction angle. The highest value of the peak flexion moment to dislocate the hip was observed at 30° of internal rotation. Conversely, the lowest value of the peak flexion moment was observed at 10° of adduction. This lowest value means that the hip joint is easy to be dislocated at this adduction angle by an external torque.
全髋关节置换脱位机制的有限元分析
本研究旨在计算全髋关节置换术(THA)在假体与假体之间发生碰撞和脱位之前的运动范围,并使用非线性有限元(FE)方法计算髋关节脱位的阻力矩。为了客观分析脱位,明确种植体间撞击与脱位的区别,建立了混合THA部件的三维有限元模型。本研究分析了易发生后路脱位的动作,如屈曲、内收、内旋及其组合。分析开始时,以髋关节在不同的内旋和内收角度弯曲到撞击发生角的方式定位股骨组成部分。在分析过程中,还考虑了应用髋关节力的肌肉力。结果表明,内旋角度和内收角度对屈曲的撞击角和脱位角都有影响。随着内旋角度的增加,撞击和脱位的屈曲角度均减小。髋关节脱位的峰值屈曲力矩虽然随着内旋角度的增加而增加,但并不总是随着内收角度的增加而增加。髋关节脱位的峰值屈曲力矩在内旋30°时达到最大值。相反,在内收10°处观察到最大弯曲力矩的最低值。这个最低值意味着髋关节很容易在这个内收角度被外部扭矩脱位。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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