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首页> 外文期刊>Acta biomaterialia >Wear rate evaluation of a novel polycarbonate-urethane cushion form bearing for artificial hip joints.
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Wear rate evaluation of a novel polycarbonate-urethane cushion form bearing for artificial hip joints.

机译:一种新型的用于人工髋关节的聚碳酸酯-聚氨酯垫形轴承的磨损率评估。

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摘要

There is growing interest in the use of compliant materials as an alternative to hard bearing materials such as polyethylene, metal and ceramics in artificial joints. Cushion form bearings based on polycarbonate-urethane (PCU) mimic the natural synovial joint more closely by promoting fluid-film lubrication. In the current study, we used a physiological simulator to evaluate the wear characteristics of a compliant PCU acetabular buffer, coupled against a cobalt-chrome femoral head. The wear rate was evaluated over 8 million cycles gravimetrically, as well as by wear particle isolation using filtration and bio-ferrography (BF). The gravimetric and BF methods showed a wear rate of 9.9-12.5mg per million cycles, whereas filtration resulted in a lower wear rate of 5.8mg per million cycles. Bio-ferrography was proven to be an effective method for the determination of wear characteristics of the PCU acetabular buffer. Specifically, it was found to be more sensitive towards the detection of wear particles compared to the conventional filtration method, and less prone to environmental fluctuations than the gravimetric method. PCU demonstrated a low particle generation rate (1-5x10 particles per million cycles), with the majority (96.6%) of wear particle mass lying above the biologically active range, 0.2-10mum. Thus, PCU offers a substantial advantage over traditional bearing materials, not only in its low wear rate, but also in its osteolytic potential.
机译:使用顺应性材料代替人造关节中的聚乙烯,金属和陶瓷等硬质轴承材料的兴趣日益浓厚。基于聚碳酸酯-聚氨酯(PCU)的垫式轴承通过促进液膜润滑来更紧密地模仿天然滑膜关节。在当前的研究中,我们使用生理模拟器来评估顺应性PCU髋臼缓冲器与钴铬合金股骨头结合的磨损特性。通过重量分析,以及通过使用过滤和生物铁谱(BF)隔离磨损颗粒,评估了800万次循环的磨损率。重量法和高炉法显示磨损率为9.9-12.5mg /百万循环,而过滤导致较低的磨损率为5.8mg /百万循环。事实证明,生物铁成像是确定PCU髋臼缓冲器磨损特性的有效方法。具体而言,发现与常规过滤方法相比,它对磨损颗粒的检测更为灵敏,并且比重力法更不易受到环境波动的影响。 PCU显示出较低的颗粒生成率(每百万个循环1-5x10个颗粒),其中大部分(96.6%)磨损颗粒质量位于生物活性范围(0.2-10微米)之上。因此,PCU与传统轴承材料相比,不仅具有低磨损率,而且具有溶骨潜力,因此具有很大的优势。

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