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Could Ti6Al4V be alternative as a bearing surface articulated with polymer in artificial cervical disc?

机译:Ti6Al4V是否可以替代人造颈椎间盘中聚合物连接的支承面?

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In order to study the feasibility for Ti6Al4V (TC4) used as a bearing surface in artificial cervical disc, the wear behaviors of polymer-on-Ti6Al4V pairs were assessed in vitro for 10 million cycles (MC) using a wear simulator. The material of polymer ball included conventional ultra-high molecular weight polyethylene (CPE), cross-linking UHMWPE (XPE) and poly ether ether ketone (PEEK). The artificial cervical disc was simplified and designed as a ball-on-socket model with the material configuration of CPE/TC4, XPE/TC4 and PEEK/TC4, respectively. The wear severity, location and damage type on the articulating surfaces were analyzed by SEM. The results indicated that the CPE and PEEK components revealed severe wear and surface damage with a mix failure mechanism of abrasive wear, ploughed grooves and fatigue cracks. For the polymer balls, the edge zone revealed more severe wear characterized by wear grooves and fatigue cracks as well as squeezing traces than the central zone characterized by linear and arc-shaped sliding scratches. In addition, there was a special damage type characterized by severe arc-shaped wear grooves in the edge zone of the polymer ball. However, TC4 component only indicated scratches after wear testing. The average wear rates were 0.83 ± 0.23 mg/MC, 0.15 ± 0.08 mg/MC and 1.28 ± 0.32 mg/MC for CPE/TC4, XPE/TC4 and PEEK/TC4 pair, respectively. Hence, XPE/TC4 pair was the most wear resistant. Considering the biotribological behavior in totality, TC4 may be alternative as a bearing surface articulated with polymer in artificial cervical disc.
机译:为了研究将Ti6Al4V(TC4)用作人造颈椎间盘的支撑表面的可行性,使用磨损模拟器对聚合物在Ti6Al4V上的磨损行为在体外进行了1000万次循环(MC)的评估。聚合物球的材料包括常规的超高分子量聚乙烯(CPE),交联的UHMWPE(XPE)和聚醚醚酮(PEEK)。简化了人工颈椎间盘,并将其设计为具有CPE / TC4,XPE / TC4和PEEK / TC4的材料构造的球上球模型。通过SEM分析了关节表面上的磨损严重程度,位置和损伤类型。结果表明,CPE和PEEK组件显示出严重的磨损和表面损伤,并具有磨料磨损,开槽和疲劳裂纹的混合破坏机理。对于聚合物球,其边缘区域比以线性和弧形滑动划痕为特征的中心区域显示出更严重的磨损,其特征在于磨损槽和疲劳裂纹以及挤压痕迹。此外,还有一种特殊的损坏类型,其特征是聚合物球边缘区域中存在严重的弧形磨损槽。但是,TC4组件仅在磨损测试后显示划痕。 CPE / TC4,XPE / TC4和PEEK / TC4对的平均磨损率分别为0.83±0.23 mg / MC,0.15±0.08 mg / MC和1.28±0.32 mg / MC。因此,XPE / TC4对是最耐磨的。考虑到总体的生物摩擦学行为,TC4可以作为人造颈椎间盘中与聚合物铰接的支承面的替代方案。

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