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Topological optimization in hip prosthesis design

机译:髋关节假体设计中的拓扑优化

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摘要

With particular interest on total hip arthroplasty (THA), optimization of orthopedic prostheses is employed in this work to minimize the probability of implant failure or maximize prosthesis reliability. This goal is often identified with the reduction of stress concentrations at the interface between bone and these devices. However, aseptic loosening of the implant is mainly influenced by bone resorption phenomena revealed in some regions of the femur when a prosthesis is introduced. As a consequence, bone resorption appears due to stress shielding, that is to say the decrease of the stress level in the implanted femur caused by the significant load carrying of the prosthesis due to its higher stiffness.A maximum stiffness topological optimization-based (TO) strategy is utilized for non-linear static finite element (FE) analyses of the femurimplant assembly, with the goal of reducing stress shielding in the femur and to furnish guidelines for re-designing hip prostheses. This is accomplished by employing an extreme accuracy for both the three-dimensional reconstruction of the femur geometry and the material properties maps assigned as explicit functions of the local densities.
机译:对全髋关节置换术(THA)特别感兴趣,在这项工作中采用了骨科假体的优化方法,以最大程度地减少植入失败的可能性或最大化假体的可靠性。通常可以通过减少骨骼与这些设备之间界面处的应力集中来确定该目标。然而,当引入假体时,植入物的无菌性松动主要受股骨某些区域显示的骨吸收现象的影响。结果,由于应力屏蔽而出现了骨吸收,也就是说,由于其较高的刚度,假体的大量负载导致了股骨应力水平的降低。基于最大刚度拓扑优化(TO )策略用于股骨植入物组件的非线性静态有限元(FE)分析,目的是减少股骨中的应力屏蔽并为重新设计髋关节假体提供指导。这是通过对股骨几何形状的三维重建和分配为局部密度的显式函数的材料特性图采用极高的精度来实现的。

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