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Formation mechanism of the primary faceted phase and complex eutectic structure within an undercooled Ag-Cu-Ge alloy

机译:过冷的Ag-Cu-Ge合金中初晶相和复杂共晶组织的形成机理

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摘要

The solidified microstructure of bulk undercooled Ag40Cu30Ge30 alloy consists of three parts: primary (Ge) phase, the complex structure of (Ag + Ge) and (Ag + ε2) pseudobinary eutectics, and (Ag + Ge + £2) ternary eutectic. In comparison, the pseudobinary eutectic no longer appears in an alloy droplet solidified in a drop tube. Once the undercooling exceeds 225 K and the cooling rate is greater than 2 × 103 Ks~-1, the microstructure of the solidified droplet is totally composed of anomalous ternary eutectic. In both cases, the primary (Ge) phase exhibits various faceted growth morphologies at different undercoolings, such as columnar block, long dendrite, equiaxed dendrite and rod-like crystal. Some refined side branches grow from the equiaxed (Ge) dendritic branches composed of (111) twins, which is ascribed to the rapid epitaxial growth of (Ag + Ge) pseudobinary eutectic from the (Ge) dendritic branches. Moreover, both the primary (Ge) phase and the (Ge) phase in the (Ag + Ge) pseudobinary eutectic are effective heterogeneous nuclei for the (Ag + £2) pseudobinary eutectic. As undercooling increases, the (Ge) phase in the (Ag + Ge + ε2) ternary eutectic transforms from faceted to non-faceted phase, while the independent nucleation and growth of the (Ag) and ε2 phases in the ternary eutectic displaces their previous cooperative growth. These growth kinetics transitions result in the formation of anomalous ternary eutectic.
机译:块状过冷的Ag40Cu30Ge30合金的凝固组织由三个部分组成:一次(Ge)相,(Ag + Ge)和(Ag +ε2)伪二元共晶的复杂结构,以及(Ag + Ge +£2)三元共晶。相比之下,假二元共晶不再出现在滴管中凝固的合金滴中。一旦过冷度超过225 K,且冷却速度大于2×103 Ks〜-1,则凝固的液滴的微观结构将完全由异常的三元共晶组成。在这两种情况下,初级(Ge)相在不同的过冷度下均表现出各种多面的生长形态,例如柱状块,长枝晶,等轴枝晶和棒状晶体。一些精炼的侧枝从由(111)孪晶组成的等轴(Ge)树状分支生长而来,这归因于(Ge)树状分支中(Ag + Ge)假二元共晶的快速外延生长。此外,(Ag + Ge)伪二元共晶中的主要(Ge)相和(Ge)相都是(Ag +£2)伪二元共晶的有效异质核。随着过冷度的增加,(Ag + Ge +ε2)三元共晶中的(Ge)相从多面相转变为无面相,而三元共晶中(Ag)和ε2相的独立成核和生长取代了它们先前的合作成长。这些生长动力学转变导致异常三元共晶的形成。

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  • 来源
    《Applied Physics》 |2011年第1期|p.275-287|共13页
  • 作者

    Y. Ruan; F.P. Dai; B. Wei;

  • 作者单位

    Department of Applied Physics, Northwestern Polytechnical University, P.O. Box 624, Xi'an 710072, People's Republic of China;

    Department of Applied Physics, Northwestern Polytechnical University, P.O. Box 624, Xi'an 710072, People's Republic of China;

    Department of Applied Physics, Northwestern Polytechnical University, P.O. Box 624, Xi'an 710072, People's Republic of China;

  • 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);
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  • 正文语种 eng
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