Feyzi Mohsen, Fallahnezhad Khosro, Taylor Mark, Hashemi Reza
College of Science and Engineering, Medical Device Research Institute, Flinders University, Tonsley, SA, 5042, Australia.
College of Science and Engineering, Medical Device Research Institute, Flinders University, Tonsley, SA, 5042, Australia.
J Mech Behav Biomed Mater. 2021 Apr;116:104338. doi: 10.1016/j.jmbbm.2021.104338. Epub 2021 Jan 21.
Modular hip implants are widely used in hip arthroplasty because of the advantages they can offer such as flexibility in material combinations and geometrical adjustments. The mechanical environment of the modular junction in the body is quite challenging due to the complex and varying off-axial mechanical loads of physical activities applied to a tapered interface of two contacting materials (head and neck) assembled by an impact force intraoperatively. Experimental analogies to the in-vivo condition of the taper junction are complex, expensive and time-consuming to implement; hence, computational simulations have been a preferred approach taken by researchers for studying the mechanics of these modular junctions that can help us understand their failure mechanisms and improve their design and longevity after implantation. This paper provides a clearer insight into the mechanics of the head-neck taper junction through a careful review on the finite element studies of the junction and their findings. The effects of various factors on the mechanical outputs namely: stresses, micromotions, and contact situations are reviewed and discussed. Also, the simulation methodology of the studies in the literature is compared. Research opportunities for future are scrutinised through tabulating data and information that have been carefully retrieved form the reported findings.
模块化髋关节植入物因其能提供如材料组合灵活性和几何调整灵活性等优势而在髋关节置换术中被广泛应用。由于术中通过冲击力组装的两种接触材料(头部和颈部)的锥形界面会受到身体活动复杂多变的非轴向机械载荷作用,体内模块化连接处的机械环境极具挑战性。模拟锥形连接处体内状况的实验复杂、昂贵且耗时;因此,计算模拟一直是研究人员用于研究这些模块化连接处力学的首选方法,这有助于我们理解其失效机制并改善其植入后的设计及使用寿命。本文通过对连接处有限元研究及其结果的仔细回顾,更深入地洞察了头颈锥形连接处的力学。回顾并讨论了各种因素对力学输出(即应力、微动和接触情况)的影响。此外,还比较了文献中研究的模拟方法。通过整理从已报道结果中仔细获取的数据和信息,审视了未来的研究机会。