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Finite Element Analysis of Porous Medical Grade Cobalt Chromium Alloy Structures Produced by Selective Laser Melting

机译:选择性激光熔融制备的多孔医用级钴铬合金结构的有限元分析

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摘要

The recent introduction of selective laser melting (SLM) for the processing of medical grade cobalt chromium (CoCr) alloy has led to a complex shape fabrication of porous custom CoCr alloy implants with controlled porosity to meet the requirements of the anatomy and functions at the region of implantation. This paper discusses finite element (FE) analysis and mechanical characterization of porous medical grade CoCr alloy in cubical structures with volume based porosity ranging between 60% and 80% produced using SLM rapid manufacturing process. Analysis by FE is considered beneficial to predict the effective mechanical properties of the porous structures manufactured by SLM due to minimization of the need for expensive and timeudconsuming physical testing. Cellular structures modelling for fabrication with Direct Metal Laser Sintering machine were designed to vary between 60% and 80% to study the effect of structural variation on mechanical properties of the cellular porous structure. ANSYS 14.0 FE modellingudsoftware was used to predict the effective elastic modulus of the samples and comparisons were made with the experimental data. FE results show that with the material properties in the functions of porosities, minimum mesh size of 0.2 mm for triangular shape mesh and boundary as well as load conditions as applied in this study, agreement in equivalent stress, strain and deformation with the experimental results can be achieved to some extent. The technique for FE in this study can beudused to investigate stress distribution in three dimensional model of real bone.
机译:最近引入的用于治疗医用级钴铬(CoCr)合金的选择性激光熔融(SLM)导致了复杂形状的多孔定制CoCr合金植入物的制造,该植入物具有可控的孔隙率,以满足该地区的解剖学和功能要求植入。本文讨论了使用SLM快速制造工艺生产的立方体积结构医用立方多孔CoCr合金的有限元(FE)分析和力学性能,这些体积结构的体积基孔隙率为60%至80%。由于最小化了对昂贵且耗时/耗费的物理测试的需求,因此通过FE进行的分析被认为有利于预测SLM制造的多孔结构的有效机械性能。用于直接金属激光烧结机制造的蜂窝结构建模被设计为在60%和80%之间变化,以研究结构变化对蜂窝多孔结构力学性能的影响。使用ANSYS 14.0 FE建模 udsoftware预测样品的有效弹性模量,并与实验数据进行比较。有限元分析结果表明,在孔隙度函数的材料特性,三角形网格和边界的最小网格尺寸为0.2 mm以及本研究中采用的载荷条件下,等效应力,应变和变形与实验结果一致在一定程度上得以实现。本研究中的有限元技术可用于研究真实骨三维模型中的应力分布。

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