Bartolomeu F, Costa M M, Alves N, Miranda G, Silva F S
Center for Micro-Electro Mechanical Systems (CMEMS-UMinho), University of Minho, Campus de Azurém, 4800-058, Guimarães, Portugal.
Center for Micro-Electro Mechanical Systems (CMEMS-UMinho), University of Minho, Campus de Azurém, 4800-058, Guimarães, Portugal.
J Mech Behav Biomed Mater. 2021 Jan;113:104123. doi: 10.1016/j.jmbbm.2020.104123. Epub 2020 Oct 3.
Ti6Al4V sub-millimetric cellular structures arise as promising solutions concerning the progress of conventional orthopedic implants due to its ability to address a combination of mechanical, physical and topological properties. Such ability can improve the interaction between implant materials and surrounding bone leading to long-term successful orthopedic implants. Selective Laser Melting (SLM) capability to produce high quality Ti6Al4V porous implants is in great demand towards orthopedic biomaterials. In this study, Ti6Al4V cellular structures were designed, modeled, SLM produced and characterized targeting orthopedic implants. For that purpose, a set of tools is proposed to overcome SLM limited accuracy to produce porous biomaterials with desired dimensions and mechanical properties. Morphological analyses were performed to evaluate the dimensional deviations noticed between the model CAD and the SLM produced structures. Tensile tests were carried out to estimate the elastic modulus of the Ti6Al4V cellular structures. The present work proposes a design methodology showing the linear correlations found for the dimensions, the porosity and the elastic modulus when comparing the model CAD designs with Ti6Al4V structures by SLM.
Ti6Al4V亚毫米级多孔结构作为传统骨科植入物发展的有前景的解决方案而出现,因为它能够兼顾机械、物理和拓扑特性。这种能力可以改善植入材料与周围骨骼之间的相互作用,从而实现长期成功的骨科植入。对骨科生物材料而言,对选择性激光熔化(SLM)制造高质量Ti6Al4V多孔植入物的能力有很大需求。在本研究中,针对骨科植入物设计、建模、通过SLM制造并表征了Ti6Al4V多孔结构。为此,提出了一套工具来克服SLM在制造具有所需尺寸和机械性能的多孔生物材料时精度有限的问题。进行了形态分析,以评估模型CAD与SLM制造结构之间的尺寸偏差。进行了拉伸试验,以估计Ti6Al4V多孔结构的弹性模量。本研究提出了一种设计方法,展示了将模型CAD设计与通过SLM制造的Ti6Al4V结构进行比较时,在尺寸、孔隙率和弹性模量方面发现的线性相关性。