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An integrated approach of topology optimized design and selective laser melting process for titanium implants materials

机译:拓扑优化设计和选择性激光熔化工艺的钛植入物材料综合方法

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摘要

The load-bearing bone implants materials should have sufficient stiffness and large porosity, which are interacted since larger porosity causes lower mechanical properties. This paper is to seek the maximum stiffness architecture with the constraint of specific volume fraction by topology optimization approach, that is, maximum porosity can be achieved with predefine stiffness properties. The effective elastic modulus of conventional cubic and topology optimized scaffolds were calculated using finite element analysis (FEA) method; also, some specimens with different porosities of 41.1, 50.3, 60.2 and 70.7 respectively were fabricated by Selective Laser Melting (SLM) process and were tested by compression test. Results showed that the computational effective elastic modulus of optimized scaffolds was approximately 13 higher than cubic scaffolds, the experimental stiffness values were reduced by 76 than the computational ones. The combination of topology optimization approach and SLM process would be available for development of titanium implants materials in consideration of both porosity and mechanical stiffness.
机译:承重骨植入物材料应具有足够的刚度和较大的孔隙率,由于孔隙率越大会导致机械性能降低,因此这些孔隙率会相互作用。本文旨在通过拓扑优化方法寻求以比体积分数为约束的最大刚度结构,即在预定义的刚度特性下可以达到最大孔隙率。采用有限元分析(FEA)方法计算了常规立方和拓扑优化支架的有效弹性模量;此外,采用选择性激光熔化(SLM)工艺制备了一些孔隙率分别为41.1%、50.3%、60.2%和70.7%的试样,并通过压缩试验进行了测试。结果表明,优化支架的计算有效弹性模量比立方支架高约13%,实验刚度值比计算支架低76%。拓扑优化方法和SLM工艺的结合将可用于开发钛植入物材料,同时考虑孔隙率和机械刚度。

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