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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part H. Journal of Engineering in Medicine >Wear of 36-mm BIOLOX~? delta ceramic-on-ceramic bearing in total hip replacements under edge loading conditions
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Wear of 36-mm BIOLOX~? delta ceramic-on-ceramic bearing in total hip replacements under edge loading conditions

机译:戴36毫米BIOLOX了吗?边缘负荷条件下全髋关节置换中的三角陶瓷陶瓷轴承

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摘要

Ceramic-on-ceramic bearings have become of great interest due to the substantial improvements in the manufacturing techniques and material properties and due to polyethylene wear debris-induced osteolysis and the issues with metal wear debris and ion release by metal-on-metal bearings. Edge loading conditions due to translational malpositioning(microseparation conditions) have been shown to replicate clinically relevant wear mechanisms and increase the wear of ceramic-on-ceramic bearings; thus, it was necessary to test new bearing materials and designs under these adverse conditions. The aim of this study was to assess the effect of increasing head size on the wear of BIOLOX~? delta ceramic-onceramic bearings under edge loading conditions due to rotational (steep cup inclination angle) and translational (microseparation) malpositioning. In this study, six 36-mm ceramic-on-ceramic bearings (BIOLOX delta, CeramTec, Germany) were tested under standard and edge loading conditions using the Leeds II hip simulator and compared to the 28-mm bearings tested and published previously under identical conditions. The mean wear rate under standard gait conditions was below 0.1mm3/million cycles for both the 28-mm and the 36-mm ceramic-on-ceramic bearings, and increasing the inclination angle did not affect the wear rates. The introduction of microseparation to the gait cycle increased the wear rate of ceramic-on-ceramic bearing and resulted in stripe wear on the femoral heads. Under microseparation conditions, the wear rate of size 36-mm bearings (0.22mm~3/million cycles) was significantly higher (p = 0.004) than that for size 28-mm bearings (0.13mm~3/million cycles). This was due to the larger contact area for the larger bearings and deprived lubrication under edge loading conditions. The wear rate of BIOLOX delta ceramic-on-ceramic bearings under microseparation conditions was still very low (<0.25mm~3/million cycles) compared to earlier generation ceramic-on-ceramic bearings (BIOLOX forte, 1.84mm3/million cycles) and other bearing materials such as metal-on-metal bearings(2-8mm~3/million cycles).
机译:由于制造技术和材料性能的显着改进以及聚乙烯磨损碎片引起的骨溶解以及金属磨损碎片和金属对金属轴承释放离子的问题,陶瓷陶瓷轴承已引起人们极大的兴趣。已经证明,由于平移错位导致的边缘载荷条件(微分离条件)会复制临床上相关的磨损机制,并增加陶瓷对陶瓷轴承的磨损。因此,有必要在这些不利条件下测试新的轴承材料和设计。这项研究的目的是评估增加头顶大小对BIOLOX的影响。由于旋转(陡峭的杯倾斜角)和平移(微分离)位置不正确而在边缘载荷条件下产生的δ陶瓷陶瓷轴承。在这项研究中,使用利兹II型髋关节模拟器在标准和边缘载荷条件下测试了六个36毫米陶瓷陶瓷轴承(BIOLOX Delta,德国CeramTec),并将其与之前测试并发布的28毫米陶瓷轴承进行了比较。条件。对于28mm和36mm的陶瓷陶瓷轴承,在标准步态条件下的平均磨损率均低于0.1mm3 /百万次循环,并且增加倾斜角不会影响磨损率。在步态周期中采用微分离技术增加了陶瓷-陶瓷轴承的磨损率,并导致股骨头上的条纹磨损。在微分离条件下,尺寸为36毫米的轴承(0.22mm〜3 /百万次循环)的磨损率(p = 0.004)明显高于尺寸为28毫米的轴承(0.13mm〜3 /百万次循环)。这是由于较大轴承的接触面积较大,并且在边缘载荷条件下缺乏润滑。与上一代陶瓷对陶瓷轴承(BIOLOX forte,1.84mm3 /百万循环)相比,BIOLOXδ陶瓷对陶瓷轴承在微分离条件下的磨损率仍然非常低(<0.25mm〜3 /百万次循环),并且其他轴承材料,例如金属对金属轴承(2-8mm〜3 /百万次循环)。

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