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Investigation of the performance of articular cartilage and synthetic biomaterials in multi-directional sliding motion as in orthopedic implants

机译:关节软骨和合成生物材料在骨科植入物中的多向滑动运动中的性能研究

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摘要

The performance of several synthetic biomaterials and bovine articular cartilage were investigated in terms of their suitability for use as articulating surfaces in artificial joints. The Dual-Axis Wear Simulator (DAWS), a wear testing machine that simulates conditions in a synovial joint, was designed and fabricated to enable investigators to measure the wear of such materials in multi-directional sliding while immersed in a bovine serum lubricant solution. This machine was used initially to determine the wear mechanisms and wear amounts of ultra-high molecular weight polyethylene (UHMWPE), polytetrafluoroethylene (PTFE), polyoxymethylene (POM), and the compliant elastomer Pellethane(TM) 2363-80A. It was found that the compliant material produced lower wear. Dynamic mechanical analysis was used to determine that bovine articular cartilage had a very significant amount of viscoelasticity to support static loads and damp impact loads. Furthermore, the use of a compliant counterface led to lower wear in the cartilage as compared to a rigid counterface. Pt-Zr quasicrystals were used as fillers in UHMWPE, and the wear, stiffness, and impact toughness of the filled polymer were shown to be comparable or better than those of UHMWPE that had been irradiation crosslinked. Crosslinked UHMWPE was investigated for its susceptibility to oxidative degradation and increased wear. It was found that thermal stabilization of the polymer could be eliminated if a mild amount crosslinking was used. Furthermore, there was no degradation in wear resistance of mildly crosslinked and non-stabilized UHMWPE even after accelerated aging. Based on the results of this work and lessons learned about compliance and wear resistance, blends were produced by using surface-activated UHMWPE particles as fillers in elastomeric PUR. The blends showed better wear resistance than UHMWPE, as well as increased stiffness and damping over PUR. The results of this work indicated that there is great potential for the development of new biomaterials and materials treatment methods to produce more durable articulating components in artificial joints.
机译:从几种合成生物材料和牛关节软骨在用作人造关节的关节表面的适用性方面进行了研究。设计并制造了双轴磨损模拟器(DAWS),它是一种模拟滑膜关节状况的磨损测试机,旨在使研究人员能够在浸入牛血清润滑剂溶液的情况下以多向滑动方式测量此类材料的磨损。最初使用该机器来确定超高分子量聚乙烯(UHMWPE),聚四氟乙烯(PTFE),聚甲醛(POM)和顺应性弹性体Pellethane™2363-80A的磨损机理和磨损量。发现该柔顺材料产生较低的磨损。动态力学分析用于确定牛关节软骨具有非常显着的粘弹性,以支持静态载荷和潮湿冲击载荷。此外,与刚性的相对面相比,使用顺应性的相对面导致软骨的磨损更低。 Pt-Zr准晶体在UHMWPE中用作填料,填充聚合物的磨损,刚度和冲击韧性显示出与辐照交联的UHMWPE相当或更好。研究了交联的UHMWPE对氧化降解和磨损增加的敏感性。发现如果使用少量的交联可以消除聚合物的热稳定性。此外,即使在加速老化之后,温和交联且不稳定的UHMWPE的耐磨性也不会降低。根据这项工作的结果以及有关顺应性和耐磨性的经验教训,通过使用表面活化的UHMWPE颗粒作为弹性体PUR中的填料来生产共混物。共混物比UHMWPE表现出更好的耐磨性,并且比PUR具有更高的刚度和阻尼。这项工作的结果表明,开发新的生物材料和材料处理方法以在人造关节中生产更耐用的关节组件具有很大的潜力。

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  • 作者

    Schwartz, Christian John;

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  • 年度 2006
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  • 原文格式 PDF
  • 正文语种 en
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