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全髋关节置换中关节面磨损的计算预测方法。

Computational method for bearing surface wear prediction in total hip replacements.

机构信息

School of Engineering, Liverpool John Moores University, Byrom Street, Liverpool, L3 3AF, UK.

School of Engineering, Liverpool John Moores University, Byrom Street, Liverpool, L3 3AF, UK.

出版信息

J Mech Behav Biomed Mater. 2021 Jul;119:104507. doi: 10.1016/j.jmbbm.2021.104507. Epub 2021 Apr 8.

DOI:10.1016/j.jmbbm.2021.104507
PMID:33862425
Abstract

Total hip replacement (THR) is a revolutionary treatment when a hip joint becomes severely damaged. Wear is known as one of the main reasons for THR failure. Current experimental techniques to investigate the wear at the bearing surfaces of THRs are time-consuming, complicated and expensive. In this study, an in-house fretting wear algorithm has been further developed to investigate the wear damage that occurs on bearing surfaces of THRs and its consequence on the longevity of the implants. A 3D finite element model has been created with a 36 mm diameter Cobalt-Chromium femoral head and a 4 mm thick cross-linked polyethylene bearing liner. A gait loading cycle was used to simulate walking for up to 5 million cycles (Mc). The wear algorithm extracts relative displacements and contact shear stresses from the finite element package to predict the linear and volumetric wear rates. This method is shown to have modelled the evolution of wear effectively and found it to be similar to those from experimental analyses. The linear and volumetric wear per million cycles predicted in this study were 0.0375mm/Mc and 33.6mm/Mc which are comparable to those measured in-vivo THRs. The wear patterns obtained from this study are also comparable to the wear patterns shown on available conventional polyethylene liners. This method can be used to further aid in the design and clinical technique to reduce wear rate in THRs.

摘要

全髋关节置换术(THR)是一种治疗髋关节严重受损的革命性方法。磨损是导致 THR 失效的主要原因之一。目前,用于研究 THR 承载表面磨损的实验技术既耗时又复杂,且费用昂贵。在本研究中,进一步开发了一种内部微动磨损算法,以研究 THR 承载表面发生的磨损损伤及其对植入物寿命的影响。创建了一个具有 36mm 直径钴铬股骨头和 4mm 厚交联聚乙烯承载衬垫的 3D 有限元模型。使用步态加载周期模拟行走,最高可达 500 万次循环(Mc)。磨损算法从有限元包中提取相对位移和接触剪切应力,以预测线性和体积磨损率。该方法有效地模拟了磨损的演变,并发现其与实验分析的结果相似。本研究预测的每百万次循环的线性和体积磨损率分别为 0.0375mm/Mc 和 33.6mm/Mc,与体内 THR 测量值相当。本研究获得的磨损模式也与现有的常规聚乙烯衬垫上显示的磨损模式相当。该方法可进一步有助于 THR 设计和临床技术,以降低磨损率。

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