首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Tradeoffs amongst fatigue, wear, and oxidation resistance of cross-linked ultra-high molecular weight polyethylene.
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Tradeoffs amongst fatigue, wear, and oxidation resistance of cross-linked ultra-high molecular weight polyethylene.

机译:在交联的超高分子量聚乙烯的疲劳,磨损和抗氧化性之间进行权衡。

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摘要

This study evaluated the tradeoffs amongst fatigue crack propagation resistance, wear resistance, and oxidative stability in a wide variety of clinically-relevant cross-linked ultra-high molecular weight polyethylene. Highly cross-linked re-melted materials showed good oxidation and wear performance, but diminished fatigue crack propagation resistance. Highly cross-linked annealed materials showed good wear and fatigue performance, but poor oxidation resistance. Moderately cross-linked re-melted materials showed good oxidation resistance, but moderate wear and fatigue resistance. Increasing radiation dose increased wear resistance but decreased fatigue crack propagation resistance. Annealing reduced fatigue resistance less than re-melting, but left materials susceptible to oxidation. This appears to occur because annealing below the melting temperature after cross-linking increased the volume fraction and size of lamellae, but failed to neutralize all free radicals. Alternately, re-melting after cross-linking appeared to eliminate free radicals, but, restricted by the network of cross-links, the re-formed lamellae were fewer and smaller in size which resulted in poor fatigue crack propagation resistance. This is the first study to simultaneously evaluate fatigue crack propagation, wear, oxidation, and microstructure in a wide variety of clinically-relevant ultra-high. The tradeoff we have shown in fatigue, wear, and oxidation performance is critical to the material's long-term success in total joint replacements.
机译:这项研究评估了多种临床相关的交联超高分子量聚乙烯在疲劳裂纹扩展性,耐磨性和氧化稳定性之间的权衡。高度交联的重熔材料显示出良好的氧化和磨损性能,但降低了疲劳裂纹扩展的抵抗力。高度交联的退火材料显示出良好的耐磨性和疲劳性能,但抗氧化性较差。中度交联的重熔材料显示出良好的抗氧化性,但具有中等的耐磨性和抗疲劳性。辐射剂量的增加增加了耐磨性,但降低了疲劳裂纹扩展性。退火降低的抗疲劳性不及重新熔化,但使材料易于氧化。这似乎是由于交联后在低于熔融温度的条件下退火而增加了薄片的体积分数和尺寸,但未能中和所有自由基。或者,交联后的重熔似乎消除了自由基,但受交联网络的限制,重新形成的薄片尺寸越来越小,导致疲劳裂纹扩展性差。这是第一个同时评估各种临床相关超高疲劳裂纹扩展,磨损,氧化和微结构的研究。我们在疲劳,磨损和氧化性能方面表现出的权衡对于该材料在全关节置换中的长期成功至关重要。

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