Faculty of Materials & Metallurgical Engineering, Semnan University, Semnan, Iran.
Faculty of Materials & Metallurgical Engineering, Semnan University, Semnan, Iran.
Mater Sci Eng C Mater Biol Appl. 2020 May;110:110725. doi: 10.1016/j.msec.2020.110725. Epub 2020 Feb 4.
In this study, four different TZNT based alloys, (TiZrNbTa, (TiZrNbTa)Fe, (TiZrNbTa)Sn, and (TiZrNbTa)Ag, (at. %), designated TZNT, TZNT-Fe, TZNT-Sn, TZNT-Ag, respectively) are produced by non-consumable vacuum arc melting and suction casting. These alloys using the d-electron alloy design method and considering the criteria of [Mo]eq and (e/a) for β-phase Ti alloys are designed. The microstructure, mechanical properties, and corrosion behavior of the alloys are investigated via optical microscopy, scanning electron microscopy, X-ray diffraction, nanoindentation, and electrochemical tests. The designed alloys exhibit dendritic morphology, however, the TZNT-Ag alloy indicates a more homogenous microstructure after suction casting. X-ray diffraction analyses reveal not only the beta phase in the TZNT, TZNT-Fe, and TZNT-Ag alloys, but also beta lean/beta rich separation in the TZNT-Sn alloy. In addition to the microstructural features, the new TZNT alloys show very high ductility upon cold compressive deformation, as well as the lowest Young's modulus (65.54±1.7 GPa, P<0.05) is achieved in TZNT-Ag alloy. Furthermore, the compressive yield stress to Young's modulus (Y/E) ratio of the designed alloys is in the range of 0.92-1.08%. In terms of corrosion behavior, Ag increases the corrosion resistance of the TZNT alloy in Ringer's solution. As a result, owing to the effect of Ag on the optimization of the mechanical properties and corrosion resistance of the TZNT alloy, the as-cast Ag-containing TZNT alloy can be developed to be a promising candidate for biomedical applications.
在这项研究中,通过非自耗真空电弧熔炼和吸铸制备了四种不同的 TZNT 基合金,(TiZrNbTa、(TiZrNbTa)Fe、(TiZrNbTa)Sn 和 (TiZrNbTa)Ag,(at.%),分别命名为 TZNT、TZNT-Fe、TZNT-Sn、TZNT-Ag)。这些合金采用 d 电子合金设计方法,并考虑到[Mo]eq 和(e/a)对于β相 Ti 合金的标准,进行了设计。通过光学显微镜、扫描电子显微镜、X 射线衍射、纳米压痕和电化学测试研究了合金的微观结构、力学性能和腐蚀行为。设计的合金表现出枝晶形貌,然而,在吸铸后 TZNT-Ag 合金表现出更均匀的微观结构。X 射线衍射分析不仅揭示了 TZNT、TZNT-Fe 和 TZNT-Ag 合金中的β相,还揭示了 TZNT-Sn 合金中的β相贫化/β相富化分离。除了微观结构特征外,新的 TZNT 合金在冷压缩变形时表现出非常高的延展性,并且在 TZNT-Ag 合金中实现了最低的杨氏模量(65.54±1.7 GPa,P<0.05)。此外,设计合金的压缩屈服强度与杨氏模量(Y/E)比在 0.92-1.08%范围内。在腐蚀行为方面,Ag 提高了 TZNT 合金在林格氏溶液中的耐腐蚀性。因此,由于 Ag 对 TZNT 合金力学性能和耐腐蚀性的优化作用,铸态含 Ag 的 TZNT 合金可以开发成为生物医学应用的有前途的候选材料。