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Temperature-dependent elastic properties of Ti_(1-x)Al_xN alloys

机译:Ti_(1-x)Al_xN合金的温度依赖性弹性

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摘要

Ti_(1-x)Al_xN is a technologically important alloy that undergoes a process of high temperature age-hardening that is strongly influenced by its elastic properties. We have performed first principles calculations of the elastic constants and anisotropy using the symmetry imposed force constant temperature dependent effective potential method, which include lattice vibrations and therefore the effects of temperature, including thermal expansion and intrinsic anharmonicity. These are compared with in situ high temperature x-ray diffraction measurements of the lattice parameter. We show that anharmonic effects are crucial to the recovery of finite temperature elasticity. The effects of thermal expansion and intrinsic anharmonicity on the elastic constants are of the same order, and cannot be considered separately. Furthermore, the effect of thermal expansion on elastic constants is such that the volume change induced by zero point motion has a significant effect. For TiAIN, the elastic constants soften non-uniformly with temperature: C_(11) decreases substantially when the temperature increases for all compositions, resulting in an increased anisotropy. These findings suggest that an increased Al content and annealing at higher temperatures will result in a harder alloy.
机译:Ti_(1-x)Al_xN是技术上重要的合金,经历了高温时效硬化过程,该过程受到其弹性特性的强烈影响。我们已经使用对称施加力恒定温度依赖性有效电势方法对弹性常数和各向异性进行了第一性原理计算,其中包括晶格振动,因此还包括温度的影响,包括热膨胀和固有非谐性。将这些与晶格参数的现场高温X射线衍射测量结果进行比较。我们表明,非谐效应对有限温度弹性的恢复至关重要。热膨胀和固有非谐性对弹性常数的影响是相同数量级的,不能分开考虑。此外,热膨胀对弹性常数的影响使得零点运动引起的体积变化具有显着影响。对于TiAIN,弹性常数会随温度不均匀地软化:当所有组合物的温度升高时,C_(11)会大大降低,从而导致各向异性增加。这些发现表明,铝含量的增加和在较高温度下的退火将导致合金变硬。

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  • 来源
    《Applied Physics Letters》 |2015年第23期|231901.1-231901.4|共4页
  • 作者单位

    Department of Physics, Chemistry, and Biology (IFM), Linkoeping University, SE-581 83 Linkoeping, Sweden,Functional Materials, Saarland University, D-66123 Saarbruecken, Germany;

    Division of Engineering and Applied Science, California Institute of Technology, Pasadena, California 91125, USA,Department of Physics, Chemistry, and Biology (IFM), Linkoeping University, SE-581 83 Linkoeping, Sweden;

    Department of Physics, Chemistry, and Biology (IFM), Linkoeping University, SE-581 83 Linkoeping, Sweden;

    Department of Physics, Chemistry, and Biology (IFM), Linkoeping University, SE-581 83 Linkoeping, Sweden;

    Department of Physics, Chemistry, and Biology (IFM), Linkoeping University, SE-581 83 Linkoeping, Sweden;

    Department of Physics, Chemistry, and Biology (IFM), Linkoeping University, SE-581 83 Linkoeping, Sweden,Materials Modeling and Development Laboratory, NUST 'MISIS,' 119049 Moscow, Russia,LACOMAS Laboratory, Tomsk State University, 634050 Tomsk, Russia;

    Department of Physics, Chemistry, and Biology (IFM), Linkoeping University, SE-581 83 Linkoeping, Sweden;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 03:15:23

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