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A Study on Uniaxial Tensile Deformation Behavior of Superelastic Titanium Alloy

机译:超弹性钛合金的单轴拉伸变形行为研究

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A superelastic titanium alloy was subjected to uniaxial tensile deformation at room temperature. The microstructural evolution and deformation mechanisms of the superelastic titanium alloy were investigated by electron backscatter diffraction (EBSD) and X-ray diffraction (XRD). Multiple deformation mechanisms including stress-induced martensitic transformation (SIMT), dislocation slip, {332}<113> and {112}<111> mechanical twinning were identified with the increase in uniaxial strain. In the early stage of deformation, a SIMT from the bcc beta phase to orthorhombic martensite phase dominantly occurred. As the deformation proceeded, the phase fraction of the remained martensite which did not return to beta phase obviously increased due to dislocation slip and mechanical twinning. The kernel average misorientation (KAM) value obtained from EBSD data gradually increased with increasing the deformation, indicating that the dislocation evolution was produced by slip. This was well matched with the trend in the full width at half maximum (FWHM) value of the peak profile obtained from XRD data. In addition, the fraction of the {332}<113> twin was lower than that of the {112}<111> twin in the initial specimen. However, the {332}<113> twin rapidly increased compared to the {112}<111> twin as deformation increased. Therefore, it is confirmed that {332}<113> twinning and dislocation slip were the dominant mechanisms during plastic deformation.
机译:在室温下对超弹性钛合金进行单轴拉伸变形。通过电子反向散射衍射(EBSD)和X射线衍射(XRD)研究了超弹性钛合金的微结构蒸馏和变形机制。多次变形机制包括应力诱导的马氏体转化(SIMT),位错滑移,{332} <113>和{112} <111>机械孪晶,随着单轴应变的增加。在变形的早期阶段,将来自BCCβ相的SIMT达到正交马氏体阶段的占主导地位。随着变形的,由于位错滑滑和机械孪晶,剩余的马氏体的相分数明显增加。随着变形的增加,从EBSD数据获得的内核平均错误(KAM)值逐渐增加,表明通过滑动产生位错进化。这与从XRD数据获得的峰值曲线的半最大(FWHM)值下的全宽度的趋势很好。另外,{332} <113℃的分数低于初始样本中的{112} <111>双胞胎的馏分。然而,与{112} <111>双胞胎相比,{332} <113> Twin迅速增加,因为变形增加。因此,确认{332} <113>孪晶和位错滑动是塑性变形期间的主导机制。

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