使用第一性原理和热钙识别潜在的低弹性模量钛基合金用于生物医学应用

MN Madigoe, R. Modiba, L. Cornish
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引用次数: 0

摘要

已知高合金β相稳定钛合金具有与人骨相当的低弹性模量(≈30 GPa)。钛合金中β相的弹性模量约为60 ~ 80 GPa,是α相(100 ~ 120 GPa)的近一半。在这项工作中,尝试通过第一性原理计算和热钙计算来开发用于生物医学应用的β相钛基合金。利用CASTEP程序在一个简单的2原子bcc单元电池上进行第一性原理计算,预测了Ti-Nb-Ta-Zr (TNTZ)体系在0 K时的理论弹性模量和力学稳定性。采用热钙法测定了合金在500℃时的相比图。合金成分为Ti-Nbx-Ta25-Zr5 (x = 5,10,20,30,40) (at.%)。理论结果表明,铌含量的增加提高了合金的力学稳定性(c′> 0)。Ti-Nb5-Ta25-Zr5合金的弹性模量最低,为55.23±24.45 GPa,是纯钛(α相)弹性模量的一半。相比图显示,在20 at时,β相的保留率高达58.6 mol.%。虽然根据第一原理计算的Voigt-Reuss-Hill杨氏模量随着铌含量的增加而增加,但在40℃时α/β相变温度降至551.3℃。% Nb。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Use of first principles and Thermo-Calc to identify potential low elastic modulus titanium-based alloys for biomedical applications
High alloyed β-phase stabilised titanium alloys are known to have low elastic moduli comparable to that of the human bone (≈30 GPa). The β-phase in titanium alloys exhibits an elastic modulus of about 60-80 GPa, which is nearly half that of α-phase (100-120 GPa). In this work, an attempt to develop a β-phase titanium-based alloy through first-principles calculations and Thermo-Calc calculations for biomedical applications was conducted. First-principles calculations were performed using the CASTEP code on a simple 2-atom bcc unit cell to predict the theoretical elastic modulus and mechanical stability of the Ti-Nb-Ta-Zr (TNTZ) system at 0 K. Thermo-Calc was used to determine the phase proportion diagrams of the proposed alloys at 500℃. The alloy comprised Ti-Nbx-Ta25-Zr5 (x = 5, 10, 20, 30, 40) (at.%). The theoretical results suggested that increasing niobium content introduced both mechanical (cʹ > 0) stability of the alloys. Alloy Ti-Nb5-Ta25-Zr5 gave the lowest elastic modulus of 55.23 ± 24.45 GPa which is half the elastic modulus of pure titanium (α phase). The phase proportion diagrams showed that up to 58.6 mol.% of β phase was retained at 20 at.% Nb, although the Voigt-Reuss-Hill Young’s modulus calculated from first principles increased with increasing niobium content while the α/β phase transformation temperature decreased down to 551.3℃ at 40 at.% Nb.
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