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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Design and simulation of polymethyl methacrylate-titanium composite bone fixing plates using finite element analysis: Optimizing the composition to minimize the stress shielding effect
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Design and simulation of polymethyl methacrylate-titanium composite bone fixing plates using finite element analysis: Optimizing the composition to minimize the stress shielding effect

机译:使用有限元分析的聚甲基丙烯酸甲酯 - 钛复合骨固定板的设计与仿真:优化组合物,以最小化应力屏蔽效果

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摘要

Stress shielding is a mechanical phenomenon usually found in load-bearing bone implants. Difference in mechanical properties between the natural bone and the artificial implant leads to stress shielding problem. In the present work, polymethyl methacrylate and commercial pure titanium were selected to design laminate and particulate composites. Optimum composition was theoretically obtained that exhibits mechanical properties close to that of natural human bone. Bone fixing plate was designed for femur bone using computer-aided design. Finite element analysis was adopted to analyze the stress distribution in the bone and implant under static load conditions. Fixing plate with three screws was modeled and simulated using finite element analysis to investigate the stress distribution. Simulation was also done considering 316L stainless steel as fixing implant and compared with the present optimized composition. Laminate composite with 0.3 volume fraction of titanium has shown mechanical properties close to the bone compared with other combinations. The results have clearly shown that the von-Mises stress induced in the bone with polymethyl methacrylate-titanium laminate composite plates was increased compared with the bone implanted with 316L steel. Interestingly, laminate composites exhibited higher stresses in the bone compared with particulate composites. From the present design and simulation, it is clearly demonstrated that the laminate composites of polymethyl methacrylate-30% titanium can be an optimum choice for load-bearing implant materials with reduced stress shielding effect.
机译:压力屏蔽是通常在承载骨植入物中发现的机械现象。天然骨骼与人工植入物之间的机械性能差异导致应力屏蔽问题。在本工作中,选择聚甲基丙烯酸甲酯和商业纯钛以设计层压材料和颗粒复合材料。理论上获得最佳组合物,其表现出靠近天然人骨的机械性能。使用计算机辅助设计为股骨骨骼设计骨固定板。采用有限元分析来分析骨骼载荷条件下骨骼中的应力分布和植入物。使用有限元分析模拟和模拟具有三个螺钉的固定板,以研究应力分布。考虑到316L不锈钢作为固定植入物也进行了模拟,并与本发明的优化组合物相比。与0.3体积分数的层压复合材料与其他组合相比,具有0.3体积钛的钛的机械性能。结果清楚地表明,与植入316L钢的骨骼相比,在甲基丙烯酸甲基酯 - 钛层压材料层的骨中诱导的von-mises应激。有趣的是,与颗粒复合材料相比,层压复合材料在骨中表现出更高的应力。从本发明的设计和模拟中,清楚地证明了聚甲基丙烯酸甲酯-30%钛的层压复合材料可以是负载挤压材料的最佳选择,减轻应力屏蔽效果。

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