首页> 美国卫生研究院文献>Science and Technology of Advanced Materials >Drastic influence of minor Fe or Co additions on the glass forming ability martensitic transformations and mechanical properties of shape memory Zr–Cu–Al bulk metallic glass composites
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Drastic influence of minor Fe or Co additions on the glass forming ability martensitic transformations and mechanical properties of shape memory Zr–Cu–Al bulk metallic glass composites

机译:少量Fe或Co对形状记忆Zr-Cu-Al大块金属玻璃复合材料的玻璃形成能力马氏体转变和力学性能的剧烈影响

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摘要

The microstructure and mechanical properties of Zr48Cu48 − xAl4Mx (M ≡ Fe or Co, x = 0, 0.5, 1 at.%) metallic glass (MG) composites are highly dependent on the amount of Fe or Co added as microalloying elements in the parent Zr48Cu48Al4 material. Addition of Fe and Co promotes the transformation from austenite to martensite during the course of nanoindentation or compression experiments, resulting in an enhancement of plasticity. However, the presence of Fe or Co also reduces the glass forming ability, ultimately causing a worsening of the mechanical properties. Owing to the interplay between these two effects, the compressive plasticity for alloys with x = 0.5 (5.5% in Zr48Cu47.5Al4Co0.5 and 6.2% in Zr48Cu47.5Al4Fe0.5) is considerably larger than for Zr48Cu48Al4 or the alloys with x = 1. Slight variations in the Young’s modulus (around 5–10%) and significant changes in the yield stress (up to 25%) are also observed depending on the composition. The different microstructural factors that have an influence on the mechanical behavior of these composites are investigated in detail: (i) co-existence of amorphous and crystalline phases in the as-cast state, (ii) nature of the crystalline phases (austenite versus martensite content), and (iii) propensity for the austenite to undergo a mechanically-driven martensitic transformation during plastic deformation. Evidence for intragranular nanotwins likely generated in the course of the austenite–martensite transformation is provided by transmission electron microscopy. Our results reveal that fine-tuning of the composition of the Zr–Cu–Al–(Fe,Co) system is crucial in order to optimize the mechanical performance of these bulk MG composites, to make them suitable materials for structural applications.
机译:Zr48Cu48-xAl4Mx(M Fe或Co,x = 0、0.5、1 at。%)金属玻璃(MG)复合材料的微观结构和力学性能高度依赖于作为母体中微合金元素的Fe或Co的添加量Zr48Cu48Al4材料。在纳米压痕或压缩实验过程中,铁和钴的添加促进了奥氏体向马氏体的转变,从而增强了可塑性。但是,Fe或Co的存在也会降低玻璃的形成能力,最终导致机械性能的恶化。由于这两种作用之间的相互作用,x = 0.5(Zr48Cu47.5Al4Co0.5中为5.5%,Zr48Cu47.5Al4Fe0.5中为6.2%)的合金的压缩塑性比Zr48Cu 48 Al 4 或x == 1的合金。根据合金的不同,还观察到了杨氏模量的微小变化(约5-10%)和屈服应力的显着变化(高达25%)。组成。详细研究了影响这些复合材料力学性能的不同微观结构因素:(i)铸态的非晶相和结晶相共存;(ii)结晶相的性质(奥氏体与马氏体)含量);以及(iii)奥氏体在塑性变形过程中经历机械驱动的马氏体相变的倾向。透射电子显微镜提供了在奥氏体-马氏体转变过程中可能产生的晶粒内纳米孪晶的证据。我们的结果表明,微调Zr-Cu-Al-(Fe,Co)系统的组成对于优化这些块状MG复合材料的机械性能,使其成为结构应用的合适材料至关重要。

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