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Analysis of strain hardening behavior in a ductile Mg-Yb based alloy

机译:基于延性Mg-Yb合金中应变硬化行为的分析

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A ductile Mg-Yb based alloy shows a larger strain hardening exponent of 0.45 than those of high-formable Mg alloys, suggesting better strain hardening ability and formability at room temperature. Hence we investigated the strain hardening behavior of the studied alloy under tensile mode. The studied alloy exhibits four strain hardening stages labeled as stage Ⅰ, Ⅱ, Ⅲ, and Ⅳ from small to large strain, different from the majority of Mg alloys. Specifically, stage Ⅱ is characterized by an increased strain hardening rate rather than plateau or decrease, which is principally attributed to the combined results of reducing effective slip length by twin boundaries, increasing the hardness of twinned regions by Basinski mechanism, and the interactions of dislocation-stacking faults. Moreover, the dropping strain hardening rate suddenly slows in a strain of ~15% in stage Ⅲ, which associates with basal-dissociated sessile dislocation structures that can hinder mobile dislocation so as to enhance hardening rate. Finally, we concluded that strong strain hardening ability in studied alloy essentially ascribes the alloying effect of Yb, which decreases stacking fault energy so that facilitate the formation of twins and stacking faults.
机译:基于延性Mg-Yb的合金显示出比高可成型镁合金的较大应变硬化指数为0.45,表明在室温下更好的应变硬化能力和成形性。因此,我们在拉伸模式下研究了所研究合金的应变硬化行为。所研究的合金表现出四个应变硬化阶段,标记为Ⅰ,Ⅱ,Ⅲ,Ⅳ期,从小到大菌株,不同于大多数Mg合金。具体地,Ⅱ阶段的特征在于,应变硬化率增加而不是高原或降低,其主要归因于通过双界降低有效滑动长度的组合结果,增加了Basinski机制的孪生区的硬度,以及脱位的相互作用 - 攻击错误。此外,Ⅲ期Ⅲ期Ⅲ株〜15%的抑菌突然减缓了Ⅲ的菌株,其与基底解离的无梗塞脱位结构相关,这可以阻碍移动脱位,以提高硬化率。最后,我们得出结论,所研究的合金的强应变硬化能力基本上归因于YB的合金作用,这降低了堆叠故障能量,从而便于形成双胞胎和堆叠故障。

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  • 来源
    《Materials Science and Engineering》 |2021年第5期|141462.1-141462.7|共7页
  • 作者单位

    Department of Materials Science and Engineering Jinzhong University Jinzhong 030600 PR China;

    Key Laboratory of Automobile Materials of Ministry of Education Department of Materials Science and Engineering Nanling Campus Jilin University Changchun 130025 PR China;

    KaShui Technology (Huizhou) Co. Ltd Huizhou 150001 PR China;

    KaShui Technology (Huizhou) Co. Ltd Huizhou 150001 PR China;

    KaShui Technology (Huizhou) Co. Ltd Huizhou 150001 PR China;

    State Key Laboratory of Rare Earth Resource Utilization Changchun Institute of Applied Chemistry Chinese Academy of Sciences Changchun 130022 PR China;

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

    Magnesium alloy; Strain hardening; Deformation twin; Dislocation;

    机译:镁合金;菌株硬化;变形双胞胎;错位;

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