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首页> 外文期刊>Materials Science and Engineering >Insignificant elastic-modulus mismatch and stress partitioning in two-phase Mg-Zn-Y alloys comprised of α-Mg and long-period stacking ordered phases
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Insignificant elastic-modulus mismatch and stress partitioning in two-phase Mg-Zn-Y alloys comprised of α-Mg and long-period stacking ordered phases

机译:由α-Mg和长周期堆积有序相组成的两相Mg-Zn-Y合金的弹性模量失配和应力分配不明显

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摘要

Elastic-modulus mismatch and the resultant stress partitioning in two-phase Mg-Zn-Y alloys comprised of α-Mg and long-period stacking ordered (LPSO) phases were studied. Two-phase polycrystals containing anisotropically oriented 18R- or 14H-type LPSO phase and single-phase polycrystals consisting of α-Mg or 18R-type LPSO phase were prepared by extrusion and directional solidification processes and their complete sets of anisotropic elastic properties were measured using resonant ultrasound spectroscopy. Elastic properties of the single and two-phase alloys were analyzed using Eshelby's inclusion theory, effective-medium approximation, and inverse Voigt-Reuss-Hill approximation, in which the crystallographic textures and microstructures formed by the preparation processes were taken into account The analyses revealed that the elastic properties of 18R-LPSO phase were not unique and they depended on the solute Zn and Y atom concentrations. Additionally, the elastic modulus of 18R-LPSO phase embedded in the two-phase alloy was lower than that of the alloy consisting of single-phase 18R-LPSO phase. The analysis using first-principles calculations based on density functional theory indicated that the low elastic modulus was caused by low density and low stability of short-range ordered solute atom clusters embedded in the LPSO phase of the two-phase alloy. Because of low elastic modulus in the LPSO phase, the elastic mismatch and resultant elastic interaction between the α-Mg and LPSO phases were very small. As a result, the formation of LPSO phase had little effect on the stress partitioning to the LPSO phase, which was independent of the LPSO-phase morphology.
机译:研究了由α-Mg和长周期堆积有序(LPSO)相组成的两相Mg-Zn-Y合金的弹性模量不匹配和所得应力分配。通过挤压和定向凝固过程制备了包含各向异性取向的18R或14H型LPSO相的两相多晶以及由α-Mg或18R型LPSO相组成的单相多晶,并使用共振超声光谱。使用埃舍尔比的夹杂理论,有效介质近似和逆Voigt-Reuss-Hill近似对单相和两相合金的弹性特性进行了分析,其中考虑了制备过程中形成的晶体织构和微观结构。认为18R-LPSO相的弹性性质不是唯一的,并且取决于溶质Zn和Y原子的浓度。另外,嵌入在两相合金中的18R-LPSO相的弹性模量低于由单相18R-LPSO相组成的合金的弹性模量。使用基于密度泛函理论的第一性原理进行的分析表明,低弹性模量是由嵌入在两相合金LPSO相中的短程有序溶质原子团簇的低密度和低稳定性引起的。由于LPSO相的弹性模量低,因此α-Mg和LPSO相之间的弹性失配以及由此产生的弹性相互作用非常小。结果,LPSO相的形成对应力分配到LPSO相的影响很小,这与LPSO相的形态无关。

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  • 来源
    《Materials Science and Engineering》 |2018年第5期|227-239|共13页
  • 作者单位

    The Institute of Scientific and Industrial Research, Osaka University, 8-1 Mihogaoka, Ibaraki, Osaka 567-0047, Japan;

    The Institute of Scientific and Industrial Research, Osaka University, 8-1 Mihogaoka, Ibaraki, Osaka 567-0047, Japan;

    Magnesium Research Center, Kumamoto University, 2-39-1 Kurokami, Chuo-ku, Kumamoto 860-8555, Japan;

    Magnesium Research Center, Kumamoto University, 2-39-1 Kurokami, Chuo-ku, Kumamoto 860-8555, Japan;

    Department of Adaptive Machine Systems, Graduate School of Engineering, Osaka University, 2-1 Yamadaoka, Suita, Osaka 565-0871, Japan;

    Graduate School of Engineering Science, Osaka University, 1-3 Machikaneyama, Toyonaka, Osaka 560-8531, Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Magnesium alloys; Elastic properties; Micromechanics; First principles; Crystallographic texture;

    机译:镁合金;弹性性能;微力学;第一原则;晶体织构;

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