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Tribological and Nanomechanical Properties of Unmodified and Crosslinked Ultra-High Molecular Weight Polyethylene for Total Joint Replacements

机译:未改性和交联的超高分子量聚乙烯对全关节置换的摩擦学和纳米力学性能

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摘要

Wear of ultra-high molecular weight polyethylene (UHMWPE) continues to be a major obstacle limiting the longevity of total joint replacements. Efforts to solve the wear problem in UHMWPE have resulted in numerous studies dealing with the microstructure, morphology, and mechanical properties of this polymer. However, the fundamental wear mechanisms at different material length scales in total joint replacements remain elusive. Consequently, a systematic investigation of the initial stage of the wear process was performed in this study in order to obtain insight into the origins of wear in UHMWPE at submicrometer scales. Sliding experiments were performed with both unmodified and crosslinked (by gamma radiation treatment) UHMWPE subjected to reciprocating sliding against Co-Cr alloy in a bath of bovine serum under ranges of mean contact pressure and sliding speed typical of knee joints. Nanoindentation and optical, scanning electron, and transmission electron microscopy were used to examine the effect of crosslinking on the nanomechanical properties, dominant wear mechanisms, and microstructure of UHMWPE. The fundamental wear micromechanisms of unmodified and crosslinked UHMWPE are interpreted in the context of coefficient of friction, wear factor, creep, adhesion force, and microstructure results.
机译:超高分子量聚乙烯(UHMWPE)的磨损仍然是限制全关节置换物使用寿命长的主要障碍。解决UHMWPE磨损问题的努力导致了对这种聚合物的微观结构,形态和机械性能的大量研究。但是,在更换总接头时,在不同材料长度尺度上的基本磨损机理仍然难以捉摸。因此,在这项研究中对磨损过程的初始阶段进行了系统的研究,以了解超微米级UHMWPE磨损的起源。在牛血清浴中,未改性的和交联的(通过伽马射线处理的)UHMWPE均在钴血清合金中相对于Co-Cr合金进行往复滑动,在平均膝关节压力和平均滑动速度范围内进行滑动实验。纳米压痕和光学,扫描电子和透射电子显微镜用于检查交联对超高分子量聚乙烯纳米力学性能,主要磨损机理和微观结构的影响。在摩擦系数,磨损系数,蠕变,粘附力和微观结构结果的背景下,对未改性和交联的UHMWPE的基本磨损微观机理进行了解释。

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