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beta-Phase Stability of Two Biomedical beta-Titanium Alloys During Severe Plastic Deformation

机译:两种生物医学β-钛合金在严重塑性变形期间的β相稳定性

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摘要

The beta-phase stability and deformation behavior patterns of two beta-type titanium bioalloys, viz. Ti-Nb-Ta-Zr (TNTZ) type and Ti-Nb-Ta (TNT) type, processed by a series of intense plastic deformations have been investigated theoretically and experimentally. Firstly, theoretical analysis was carried out, including an estimation of possible deformation mechanisms based on the electronic parameters of the studied alloys identified with the aid of the Bo-Md diagram. Secondly, phase composition and structural parameters determined by x-ray diffraction (XRD) analysis revealed that the application of severe plastic deformation (SPD) induces grain refinement (in particular for one of the two alloys), accompanied by residual stress generation and some partial phase transformation. Scanning electron microscopy (SEM)/transmission electron microscopy (TEM) imaging and some measurements of the texture completed the deformation behavior analysis. TNT alloy, with higher beta stability (Mo-eq similar to 12.5 wt.%), presented an almost unmodified beta-grain dimension from 29.4 nm to 24.4 nm (and thus poor beta-grain refinement), coupled with a very fine dispersion of nanometric (similar to 8.4 nm) crystallites of orthorhombic alpha ''-stress-induced martensite. TNTZ alloy, also with high beta stability (Mo-eq similar to 10.1 wt.%), showed accentuated beta-grain refinement (from 27.8 nm to 9.9 nm), with a very small amount of orthorhombic alpha ''-stress-induced martensite, but grain dimensions almost three times larger than that of the TNT alloy (similar to 20.8 nm). The theoretical estimations concerning the possible deformation mechanisms are supported by the analysis of the experimental results.
机译:两种β型钛Bioalloys,VIZ的β相稳定性和变形行为模式。通过理论上和实验研究了由一系列强烈的塑性变形处理的Ti-Nb-Ta-Zr(TNTZ)类型和TI-NB-TA(TNT)类型。首先,进行理论分析,包括基于借助于BO-MD图所识别的所研究的合金的电子参数的可能变形机制的估计。其次,通过X射线衍射(XRD)分析确定的相组合物和结构参数显示,严重塑性变形(SPD)的应用诱导晶粒细化(特别是对于两个合金中的一种),伴随着残余应力产生和一些部分相变。扫描电子显微镜(SEM)/透射电子显微镜(TEM)成像和一些测量纹理完成了变形行为分析。 TNT合金具有更高的β稳定性(Mo-eq类似于12.5重量%),将几乎未改性的β-晶粒尺寸从29.4nm呈现为29.4nm至24.4nm(并因此差的β-晶粒细化),与非常精细的分散相结合纳米(类似于8.4nm)正交α''''诱导的马氏体的微晶。 TNTZ合金,也具有高β稳定性(Mo-eq类似于10.1重量%),显示出令人讨厌的β-晶粒细化(从27.8nm至9.9nm),具有非常少量的正畸α'''-stress诱导的马氏体,但谷物尺寸几乎比TNT合金(类似于20.8nm)的三倍。关于可能变形机制的理论估计得到了实验结果的分析。

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  • 来源
    《JOM》 |2020年第8期|共12页
  • 作者单位

    Univ Politehn Bucuresti Fac Mat Sci &

    Engn 313 Spl Independentei Bucharest 060042 Romania;

    Univ Politehn Bucuresti Fac Mat Sci &

    Engn 313 Spl Independentei Bucharest 060042 Romania;

    Ovidius Univ Constanta Fac Mech Ind &

    Maritime Engn Constanta 900527 Romania;

    Univ Politehn Bucuresti Fac Mat Sci &

    Engn 313 Spl Independentei Bucharest 060042 Romania;

    Univ Politehn Bucuresti Fac Mat Sci &

    Engn 313 Spl Independentei Bucharest 060042 Romania;

    Univ Politehn Bucuresti Fac Mat Sci &

    Engn 313 Spl Independentei Bucharest 060042 Romania;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 有色金属冶炼;金属学与金属工艺;
  • 关键词

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