首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Achieving high superplasticity of a traditional thermal-mechanical processed non-superplastic Al-Zn-Mg alloy sheet by low Sc additions
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Achieving high superplasticity of a traditional thermal-mechanical processed non-superplastic Al-Zn-Mg alloy sheet by low Sc additions

机译:通过添加低Sc来实现传统热机械加工的非超塑性Al-Zn-Mg合金板的高超塑性

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The non-superplastic Al-Zn-Mg alloy sheet produced by a simple traditional thermal-mechanical processing can achieve high superplasticity at the temperatures ranging from 450 to 500 degrees C and the strain rates ranging from 1 x 10 (3) to 1 x 10 (2) s (1) by low scandium additions in the presence of 0.10% Sc (wt.%). An elongation of 1050% is obtained at 500 degrees C and 5 x 10 (3) s (1). Analyses on the superplastic data reveal that the average values of the strain rate sensitivity and the activation energy of the Al-Zn-Mg-Sc-Zr alloy are about 0.5 and 85 kJ/mol (1), respectively. The microstructural results show that the studied alloy consists of 3.14 mu m grains characterized by a high fraction of low angle grain boundaries and strong beta-fiber rolling textures. During superplastic deformation, low angle grain boundaries gradually transfer into high angle grain boundaries to sustain grain boundary sliding, and the texture intensity diminishes. Besides, beta-fiber rolling textures weaken and cube and random textures are dominant in the superplastic deformed alloy. Superior superplastic ductility of the Al-Zn-Mg-Sc-Zr alloy is ascribed to the coherent 10-20 nm Al3ScxZr1 x particles that strongly retard recrystallization grain growth. Analyses of the superplastic data indicate that grain boundary sliding is the predominant deformation mechanism. (C) 2015 Elsevier B.V. All rights reserved.
机译:通过简单的传统热机械加工生产的非超塑性Al-Zn-Mg合金板可以在450至500摄氏度的温度和1 x 10(3)到1 x 10的应变率范围内实现高超塑性(2)s(1)通过在0.10%Sc(wt。%)的存在下低low添加。在500摄氏度和5 x 10(3)s(1)下获得1050%的伸长率。对超塑性数据的分析表明,Al-Zn-Mg-Sc-Zr合金的应变速率敏感性和活化能的平均值分别约为0.5和85 kJ / mol(1)。显微组织结果表明,所研究的合金由3.14μm的晶粒组成,其特征是高比例的低角度晶界和强β纤维轧制织构。在超塑性变形过程中,低角度晶界逐渐转变为高角度晶界以维持晶界滑动,并且纹理强度减小。此外,在超塑性变形合金中,β纤维的滚动织构变弱且呈立方体,随机织构占主导。 Al-Zn-Mg-Sc-Zr合金具有超强的塑性,归因于10-20 nm的相干Al3ScxZr1 x颗粒,这些颗粒强烈阻碍了再结晶晶粒的生长。对超塑性数据的分析表明,晶界滑动是主要的变形机制。 (C)2015 Elsevier B.V.保留所有权利。

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