School of Materials and Metallurgy, University of Birmingham, Edgbaston, Birmingham B15 2TT, U.K.
School of Chemical Engineering, University of Birmingham, Edgbaston, Birmingham B15 2TT, U.K.
ACS Biomater Sci Eng. 2022 Jun 13;8(6):2336-2348. doi: 10.1021/acsbiomaterials.1c01277. Epub 2022 May 10.
A Ti-34Nb-13Ta-5Zr (TNT5Zr) β Ti alloy with a high strength-to-modulus ratio has been developed, showing its potential to become another candidate material in load-bearing implant applications. This work mainly investigates the microstructural evolution, mechanical properties, and biocompatibility of a post-processing-treated TNT5Zr alloy manufactured via selective laser melting (SLM). Transmission electron microscopy observation shows the existence of the single beta grain matrix and alpha precipitates along the grain boundary in the SLM + HIP manufactured TNT5Zr alloy (TNT5Zr-AF + HIP), and ellipsoidal nano-sized intragranular α″ precipitates (approx. 5-10 nm) were introduced after the subsequent low-temperature aging treatment. The precipitation strengthening enables the SLM + HIP + aging manufactured TNT5Zr (TNT5Zr-AF + HIPA) alloy to show a comparable ultimate tensile strength (853 ± 9 MPa) to that of the reference material (Ti64-AF + HIP, 926 ± 23 MPa). Including the inferior notch-like surface of the test pieces, the slip-band cracking that occurs in this ductile TNT5Zr-AF + HIPA alloy is regarded as the main factor in determining its fatigue strength (170 MPa). short-term biocompatibility evaluation reveals almost no significant difference in the preosteoblast viability, differentiation, and mineralization between TNT5Zr-AF + HIPA and the reference biomaterial (Ti64-AF + HIP).
一种具有高强度与模量比的 Ti-34Nb-13Ta-5Zr(TNT5Zr)β钛合金已经被开发出来,这表明它有可能成为承载植入物应用的另一种候选材料。本工作主要研究了通过选择性激光熔化(SLM)制造的后处理 TNT5Zr 合金的微观结构演变、力学性能和生物相容性。透射电子显微镜观察表明,在 SLM + HIP 制造的 TNT5Zr 合金(TNT5Zr-AF + HIP)中存在单一的β晶粒基体和沿晶界的α析出物,并且在随后的低温时效处理后引入了椭圆形纳米级的晶内α″析出物(约 5-10nm)。沉淀强化使 SLM + HIP + 时效制造的 TNT5Zr(TNT5Zr-AF + HIPA)合金具有与参考材料(Ti64-AF + HIP,926 ± 23MPa)相当的极限拉伸强度(853 ± 9MPa)。包括试件的缺口状表面较差在内,这种韧性的 TNT5Zr-AF + HIPA 合金中的滑移带开裂被认为是决定其疲劳强度(170MPa)的主要因素。短期生物相容性评估表明,TNT5Zr-AF + HIPA 和参考生物材料(Ti64-AF + HIP)之间的前成骨细胞活力、分化和矿化几乎没有显著差异。