Kim Kyong Min, Kim Hee Young, Miyazaki Shuichi
Graduate School of Pure and Applied Sciences, University of Tsukuba, Tsukuba, Ibaraki 305-8573, Japan.
Faculty of Pure and Applied Sciences, University of Tsukuba, Tsukuba, Ibaraki 305-8573, Japan.
Materials (Basel). 2020 Jan 19;13(2):476. doi: 10.3390/ma13020476.
Ti alloys have attracted continuing research attention as promising biomaterials due to their superior corrosion resistance and biocompatibility and excellent mechanical properties. Metastable β-type Ti alloys also provide several unique properties such as low Young's modulus, shape memory effect, and superelasticity. Such unique properties are predominantly attributed to the phase stability and reversible martensitic transformation. In this study, the effects of the Nb and Zr contents on phase constitution, transformation temperature, deformation behavior, and Young's modulus were investigated. Ti-Nb and Ti-Nb-Zr alloys over a wide composition range, i.e., Ti-(18-40)Nb, Ti-(15-40)Nb-4Zr, Ti-(16-40)Nb-8Zr, Ti-(15-40)Nb-12Zr, Ti-(12-17)Nb-18Zr, were fabricated and their properties were characterized. The phase boundary between the β phase and the α'' martensite phase was clarified. The lower limit content of Nb to suppress the martensitic transformation and to obtain a single β phase at room temperature decreased with increasing Zr content. The Ti-25Nb, Ti-22Nb-4Zr, Ti-19Nb-8Zr, Ti-17Nb-12Zr and Ti-14Nb-18Zr alloys exhibit the lowest Young's modulus among Ti-Nb-Zr alloys with Zr content of 0, 4, 8, 12, and 18 at.%, respectively. Particularly, the Ti-14Nb-18Zr alloy exhibits a very low Young's modulus less than 40 GPa. Correlation among alloy composition, phase stability, and Young's modulus was discussed.
钛合金因其优异的耐腐蚀性、生物相容性和出色的机械性能,作为有前景的生物材料一直受到持续的研究关注。亚稳β型钛合金还具有一些独特的性能,如低杨氏模量、形状记忆效应和超弹性。这些独特性能主要归因于相稳定性和可逆马氏体转变。在本研究中,研究了铌(Nb)和锆(Zr)含量对相组成、转变温度、变形行为和杨氏模量的影响。制备了宽成分范围的Ti-Nb和Ti-Nb-Zr合金,即Ti-(18-40)Nb、Ti-(15-40)Nb-4Zr、Ti-(16-40)Nb-8Zr、Ti-(15-40)Nb-12Zr、Ti-(12-17)Nb-18Zr,并对其性能进行了表征。明确了β相和α''马氏体相之间的相界。随着Zr含量的增加,抑制马氏体转变并在室温下获得单一β相所需的Nb下限含量降低。Ti-25Nb、Ti-22Nb-4Zr、Ti-19Nb-8Zr、Ti-17Nb-12Zr和Ti-14Nb-18Zr合金在Zr含量分别为0、4、8、12和18原子百分比的Ti-Nb-Zr合金中表现出最低的杨氏模量。特别是,Ti-14Nb-18Zr合金表现出非常低的杨氏模量,小于40 GPa。讨论了合金成分、相稳定性和杨氏模量之间的相关性。