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首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Ti-6Al-4V triply periodic minimal surface structures for bone implants fabricated via selective laser melting
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Ti-6Al-4V triply periodic minimal surface structures for bone implants fabricated via selective laser melting

机译:用于通过选择性激光熔化制造的骨植入物的Ti-6AL-4V三次周期性表面结构

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摘要

Triply periodic minimal surface (TPMS) structures have already been shown to be a versatile source of biomorphic scaffold designs. Therefore, in this work, Ti-6Al-4V Gyroid and Diamond TPMS lattices having an interconnected high porosity of 80-95% and pore sizes in the range of 560-1600 mu m and 480-1450 mu m respectively were manufactured by selective laser melting (SLM) for bone implants. The manufacturability, microstructure and mechanical properties of the Ti-6Al-4V TPMS lattices were evaluated. Comparison between 3D micro-CT reconstructed models and original CAD models of the Ti-6Al-4V TPMS lattices shows excellent reproduction of the designs. The as-built Ti-6Al-4V struts exhibit the microstructure of columnar grains filled with very fine and orthogonally oriented alpha' martensitic laths with the width of 100-300 nm and have the microhardness of 4.01 +/- 0.34 GPa. After heat treatment at 680 degrees C for 4 h, the alpha' martensite was converted to a mixture of alpha and beta, in which the alpha phase being the dominant fraction is present as fine laths with the width of 500-800 nm and separated by a small amount of narrow, interphase regions of dark beta phase. Also, the microhardness is decreased to 3.71 +/- 0.35 GPa due to the coarsening of the microstructure. The 80-95% porosity TPMS lattices exhibit a comparable porosity with trabecular bone, and the modulus is in the range of 0.12-1.25 GPa and thus can be adjusted to the modulus of trabecular bone. At the same range of porosity of 5-10%, the moduli of cortical bone and of the Ti-6Al-4V TPMS lattices are in a similar range. Therefore, the modulus and porosity of Ti-6Al-4V TPMS lattices can be tailored to the levels of human bones and thus reduce or avoid "stress shielding" and increase longevity of implants. Due to the biomorphic designs, and high interconnected porosity and stiffness comparable to human bones, SLM-made Ti-6Al-4V TPMS lattices can be a promising material for load bearing bone implants. (C) 2015 Elsevier Ltd. All rights reserved.
机译:已经显示了三个周期性的最小表面(TPMS)结构是生物形态支架设计的多功能源。因此,通过选择性激光制造具有互连的高孔隙率的Ti-6Al-4V陀螺胶和金刚石TPMS晶片,孔径为80-95%,孔径分别为560-1600μm和480-1450μm。熔化(SLM)用于骨植入物。评估了Ti-6AL-4V TPMS格子的可制造性,微观结构和机械性能。 3D微型CT重建模型与TI-6AL-4V TPMS格子的原始CAD模型之间的比较显示了设计的优异再现。底部的Ti-6Al-4V支柱表现出柱状粒的微观结构,填充有非常精细和正交的α的马氏体车道,宽度为100-300nm,并具有4.01 +/- 0.34GPa的微硬度。在680℃下热处理4小时后,将α的马氏体转化为α和β的混合物,其中作为主要部分的α相对于宽度为500-800nm并分开存在。少量狭窄,间间区域的暗β相。此外,由于微观结构的粗化,显微硬度降至3.71 +/- 0.35GPa。 80-95%的孔隙率TPMS格子表现出具有小梁骨的可比较孔隙率,模量在0.12-1.25GPa的范围内,因此可以调节到小梁骨模量。在相同范围为5-10%的孔隙率,皮质骨和Ti-6Al-4V TPM格子的模态在类似的范围内。因此,TI-6AL-4V TPMS格子的模量和孔隙率可以根据人体骨骼的水平定制,从而减少或避免“应力屏蔽”并增加植入物的寿命。由于生物晶体设计,以及与人骨骼相当的高互连孔隙率和刚度,SLM制造的Ti-6Al-4V TPM格子可以是负载骨植入物的有希望的材料。 (c)2015 Elsevier Ltd.保留所有权利。

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