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全关节置换中使用的超高分子量聚乙烯的屈服、塑性流动和断裂行为。

The yielding, plastic flow, and fracture behavior of ultra-high molecular weight polyethylene used in total joint replacements.

作者信息

Kurtz S M, Pruitt L, Jewett C W, Crawford R P, Crane D J, Edidin A A

机构信息

Exponent Failure Analysis Associates Inc., Philadelphia, PA 19103, USA.

出版信息

Biomaterials. 1998 Nov;19(21):1989-2003. doi: 10.1016/s0142-9612(98)00112-4.

Abstract

The yielding, plastic flow, and fracture behavior of UHMWPE plays an important role in wear and failure mechanisms of total joint replacement components. The primary objective of this study was to compare the yielding, plastic flow, and fracture behavior of two implantable grades of UHMWPE (GUR 1120 vs 4150 HP). The first part of this work explored the hypothesis that up to the polymer yield point, the monotonic loading behavior of UHMWPE displays similar true stress strain behavior in tension and compression. Uniaxial tension and compression tests were conducted to compare the equivalent true stress vs strain response of UHMWPE up to 0.12 true strain. During monotonic loading, the equivalent true stress strain behavior was similar in tension and compression up to the yield point. However, investigation of the unloading behavior and permanent plastic deformations showed that classical deviatoric rate independent plasticity theory may dramatically overpredict the permanent strains in UHMWPE. A secondary goal of this study was to determine the ultimate true stress and strain for UHMWPE and to characterize the fracture surfaces after failure. Using a fracture mechanics approach, the critical flaw sizes were used in combination with the true ultimate stresses to predict the fracture toughness of the two resins. A custom video-based strain measurement system was developed and validated to characterize the true stress-strain behavior up to failure and to verify the accuracy of the incompressibility assumption in calculating the true stress-strains up to failure. In a detailed uncertainty analysis, theoretical expressions were derived for the relative uncertainty in digital video-based estimates of nominal strain, true strain, homogeneous stress, and true stress. Although the yielding behavior of the two UHMWPE resins was similar, the hardening and plastic flow behavior clearly discriminated between the GUR 1120 and 4150 HP. A statistically significant difference between the fracture toughness of the two resins was also evident. The long-term goal of this research is to provide detailed true stress strain data for UHMWPE under uniaxial tension and compression for future numerical simulations and comparison with more complex multiaxial loading conditions.

摘要

超高分子量聚乙烯(UHMWPE)的屈服、塑性流动和断裂行为在全关节置换部件的磨损和失效机制中起着重要作用。本研究的主要目的是比较两种可植入级别的UHMWPE(GUR 1120与4150 HP)的屈服、塑性流动和断裂行为。这项工作的第一部分探讨了这样一个假设:在聚合物屈服点之前,UHMWPE在拉伸和压缩时的单调加载行为表现出相似的真实应力应变行为。进行了单轴拉伸和压缩试验,以比较UHMWPE在高达0.12真实应变时的等效真实应力与应变响应。在单调加载过程中,直至屈服点,拉伸和压缩时的等效真实应力应变行为相似。然而,对卸载行为和永久塑性变形的研究表明,经典的偏量率无关塑性理论可能会显著高估UHMWPE中的永久应变。本研究的第二个目标是确定UHMWPE的极限真实应力和应变,并表征失效后的断裂表面。采用断裂力学方法,将临界缺陷尺寸与真实极限应力结合起来预测两种树脂的断裂韧性。开发并验证了一种基于视频的定制应变测量系统,以表征直至失效时的真实应力应变行为,并验证在计算直至失效时的真实应力应变时不可压缩性假设的准确性。在详细的不确定性分析中,推导了基于数字视频的名义应变、真实应变、均匀应力和真实应力估计值相对不确定性的理论表达式。尽管两种UHMWPE树脂的屈服行为相似,但GUR 1120和4150 HP之间的硬化和塑性流动行为明显不同。两种树脂的断裂韧性之间也存在统计学上的显著差异。本研究的长期目标是为UHMWPE在单轴拉伸和压缩下提供详细的真实应力应变数据,以供未来进行数值模拟,并与更复杂的多轴加载条件进行比较。

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