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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Microstructure, mechanical properties, and crystallization behavior of Zr-based bulk metallic glasses prepared under a low vacuum
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Microstructure, mechanical properties, and crystallization behavior of Zr-based bulk metallic glasses prepared under a low vacuum

机译:低真空下制备的Zr基块状金属玻璃的微观结构,力学性能和结晶行为

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The present work is devoted to an investigation of the microstructure, deformation behavior and kinetics of crystallization of Zr-based glassy alloys produced in a low vacuum environment. The data obtained indicate that small additions of rare earth (RE) metals, such as Dy, Gd, Er, to a Zr62.5Cu22.5Fe5Al10 alloy are likely to suppress heterogeneous nucleation of impurities, and thus, increase the glass forming ability (GFA), which allows obtaining glassy ingots up to 5 mm diameter even under a low vacuum. The structure of the alloys consisted of a glassy matrix and a small fraction of RE oxides. The large difference between the enthalpies of the oxide formation of copper and RE elements is responsible for the reduction of copper concentration in the regions near the oxides. According to the kinetics parameters of crystallization, the highest thermal stability observed in a Gd-bearing alloy corresponds to its good GFA. The maximum compression strength was achieved in the alloy containing 0.5 at.% of Dy. At the same time, the optimal combination of strength and plasticity, with the fracture strength of 1890 MPa and the plastic deformation of 3.3%, was observed in the alloy containing 1 at.% of Gd. A finite element modeling (FEM) analysis showed that equiaxed oxide particles can prevent propagation of a single shear band and promote generation of multiple shear bands. (C) 2015 Elsevier B.V. All rights reserved.
机译:本工作致力于研究在低真空环境下生产的Zr基玻璃态合金的微观结构,变形行为和结晶动力学。获得的数据表明,向Zr62.5Cu22.5Fe5Al10合金中少量添加稀土金属(RE),例如Dy,Gd,Er可能会抑制杂质的异相形核,从而提高玻璃形成能力(GFA)。 ),即使在低真空下也可以获得直径最大为5 mm的玻璃状铸锭。合金的结构由玻璃状基质和一小部分的RE氧化物组成。铜和稀土元素的氧化物形成焓之间的巨大差异是导致氧化物附近区域铜浓度降低的原因。根据结晶动力学参数,在含Gd的合金中观察到的最高热稳定性与其良好的GFA相符。在含有0.5at。%Dy的合金中达到了最大压缩强度。同时,在含1 at。%Gd的合金中观察到了强度和塑性的最佳组合,断裂强度为1890 MPa,塑性变形为3.3%。有限元建模(FEM)分析表明,等轴氧化物颗粒可以防止单个剪切带的传播并促进多个剪切带的产生。 (C)2015 Elsevier B.V.保留所有权利。

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