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交联超高分子量聚乙烯中临床相关缺口(半径达 0.5 毫米)的粘塑性裂纹起始与扩展。

Viscoplastic crack initiation and propagation in crosslinked UHMWPE from clinically relevant notches up to 0.5mm radius.

机构信息

Microsoft, One Microsoft Way, Redmond, WA 98052, United States.

Mechanical and Aerospace Engineering Department, Case Western Reserve University, Cleveland, OH 44106, United States.

出版信息

J Mech Behav Biomed Mater. 2018 Jan;77:73-77. doi: 10.1016/j.jmbbm.2017.08.030. Epub 2017 Sep 1.

Abstract

Highly crosslinked UHMWPE is now the material of choice for hard-on-soft bearing couples in total joint replacements. However, the fracture resistance of the polymer remains a design concern for increased longevity of the components in vivo. Fracture research utilizing the traditional linear elastic fracture mechanics (LEFM) or elastic plastic fracture mechanics (EPFM) approach has not yielded a definite failure criterion for UHMWPE. Therefore, an advanced viscous fracture model has been applied to various notched compact tension specimen geometries to estimate the fracture resistance of the polymer. Two generic crosslinked UHMWPE formulations (remelted 65kGy and remelted 100kGy) were analyzed in this study using notched test specimens with three different notch radii under static loading conditions. The results suggest that the viscous fracture model can be applied to crosslinked UHMWPE and a single value of critical energy governs crack initiation and propagation in the material. To our knowledge, this is one of the first studies to implement a mechanistic approach to study crack initiation and propagation in UHMWPE for a range of clinically relevant stress-concentration geometries. It is believed that a combination of structural analysis of components and material parameter quantification is a path to effective failure prediction in UHMWPE total joint replacement components, though additional testing is needed to verify the rigor of this approach.

摘要

高度交联的超高分子量聚乙烯(UHMWPE)现在是全关节置换中软硬结合轴承对的首选材料。然而,该聚合物的抗断裂性仍然是设计关注点,以提高组件在体内的使用寿命。利用传统的线弹性断裂力学(LEFM)或弹塑性断裂力学(EPFM)方法进行的断裂研究并未为 UHMWPE 提供明确的失效标准。因此,已经将先进的粘性断裂模型应用于各种带有切口的紧凑拉伸试样几何形状,以估计聚合物的抗断裂性。本研究使用带有三个不同切口半径的切口测试试样,对两种通用交联 UHMWPE 配方(再熔化 65kGy 和再熔化 100kGy)进行了分析,在静态加载条件下进行分析。结果表明,粘性断裂模型可应用于交联 UHMWPE,并且单个临界能量值控制着材料中裂纹的起始和扩展。据我们所知,这是首批使用力学方法研究一系列临床相关应力集中几何形状下 UHMWPE 中裂纹起始和扩展的研究之一。人们认为,组件的结构分析和材料参数量化的组合是实现 UHMWPE 全关节置换组件有效失效预测的一种途径,尽管需要进行更多的测试来验证这种方法的严谨性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7e17/5696038/b3168974a59f/nihms904990f1.jpg

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