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Microstructure characteristics and strain rate sensitivity of a biomedical Ti–25Nb–3Zr–3Mo–2Sn titanium alloy during thermomechanical processing

机译:生物医学Ti–25Nb–3Zr–3Mo–2Sn钛合金在热机械加工过程中的微观结构特征和应变速率敏感性

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摘要

Microstructure characteristics and strain rate sensitivity of Ti–25Nb–3Zr–3Mo–2Sn alloy were studied by compression deformation at 850 °C and strain rate of 0.001–50 s−1, to give a basic understanding for the alloy being able to obtain a reasonable microstructure by thermomechanical processing. The results show that both microstructure evolution and flow behavior are sensitive to strain rate. At the lower strain rates of 0.001–0.1 s−1, dynamic recovery leads to abundant sub-grains. At the higher strain rates of 1–50 s−1, dynamic recrystallization (DRX) is activated in small extent, resulting in the localized grain refinement and a decreased strain rate sensitivity (m). Two typical orientation accumulation patterns, i.e., continuous accumulation and multi-peak orientation, are prone to occur at the lower and higher strain rates, respectively. It is considered that the activated DRX is associated with the strain concentration and deformation heating. The former promotes the boundary bugling and migration as well as misorientation accumulations, while the latter provides an energy potential needed for grain nucleation, and accelerates the rearrangement of the mobile dislocations into low-energy configurations.
机译:通过在850°C的压缩变形和0.001-50s-1的应变速率下研究了Ti-25Nb-3Zr-3Mo-2Sn合金的微观结构特征和应变速率敏感性,从而对该合金能够获得通过热机械加工获得合理的微观结构。结果表明,微观结构的演变和流动行为都对应变率敏感。在0.001–0.1 s-1的较低应变速率下,动态恢复会导致大量的亚晶粒。在1–50 s-1的较高应变速率下,动态重结晶(DRX)在较小程度上被激活,从而导致局部晶粒细化并降低了应变速率灵敏度(m)。两种典型的取向积累模式,即连续积累和多峰取向,分别倾向于在较低和较高的应变速率下发生。认为激活的DRX与应变集中和变形加热有关。前者促进了边界缺陷和迁移以及取向错误的积累,而后者则提供了晶粒成核所需的能量潜力,并加速了移动位错向低能量构型的重排。

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  • 来源
    《Journal of Materials Science》 |2015年第15期|5165-5173|共9页
  • 作者单位

    Department of Materials Science and Engineering Engineering Faculty National University of Singapore">(1);

    Northwest Institute for Non-ferrous Metal Research (NIN)">(2);

    Department of Mechanical and Electronic Engineering Yingkou Institute of Technology">(3);

    Northwest Institute for Non-ferrous Metal Research (NIN)">(2);

    Northwest Institute for Non-ferrous Metal Research (NIN)">(2);

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