Development of Hip Implant: Gait Study and Finite Element Analysis

Iman Nur Alissa Md Rosli, S. Shuib, A. Shokri, A. Ghani, Najwa Syakirah Hamizan, Iffa Mohd Arrif
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Abstract

The hip joint gives stability to the whole human structure making it an important part of the human body that provides the ability to carry out various everyday work such as walking and running. Although hip joint replacement is commonly and successfully performed, an increased number of younger and active patients widens the range of motion of patients leading to the need for a longer lifetime of the replacement joint. This matter puts a challenge to the orthopedic surgical procedures that is needed to be overcome. This paper studies the effect of gait activity and loading acting across the joint by using Finite Element Analysis (FEA) to evaluate the total deformation and von Mises stress distribution of the hip implant. Alongside, structural analysis is conducted to evaluate a better implant design that has less stress distribution which is lesser than its yielded strength to avoid implant failure. FEA was performed using Computer-Aided Engineering (CAE) software of ANSYS by static structural analysis to study the mechanical behaviors of 3-dimensional hip implant models with the femoral design being loaded with forces ranging from 2.5 to 6.4 kN. Obtained results show von Mises stress distribution ranging from 400-1000 MPa of different gait activities, most cases are notably lower than the yield stress value of titanium alloy, Ti-6Al-4V (860 MPa). This work revealed the critical stress concentration located on the hip implant by numerical analysis with lesser stress values than the yielded strength that offers to improve optimization of implant design and life expectancy to avoid the hip implant revision in active patients.
髋关节植入物的发展:步态研究和有限元分析
髋关节为整个人体结构提供了稳定性,使其成为人体的重要组成部分,提供了进行各种日常工作的能力,如走路和跑步。尽管髋关节置换术很常见,也很成功,但越来越多的年轻和活跃的患者扩大了患者的活动范围,导致需要更长的置换关节寿命。这一问题对矫形外科手术提出了一个需要克服的挑战。本文通过有限元分析(Finite Element Analysis, FEA)评估髋关节假体的总变形和von Mises应力分布,研究步态活动和载荷作用在关节上的影响。此外,还进行了结构分析,以评估更好的种植体设计,其应力分布小于其屈服强度,以避免种植体失效。采用ANSYS计算机辅助工程(CAE)软件进行静力结构分析,研究股骨设计的三维假体模型在载荷范围为2.5 ~ 6.4 kN时的力学行为。所得结果表明,不同步态活动的von Mises应力分布范围在400-1000 MPa之间,大多数情况下均明显低于钛合金Ti-6Al-4V的屈服应力值(860 MPa)。这项工作通过数值分析揭示了位于髋关节假体上的临界应力集中,其应力值小于屈服强度,从而改善了假体设计的优化和预期寿命,避免了活动期患者髋关节假体翻修。
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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