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Environmental Fatigue-Crack Surface Crystallography for Al-Zn-Cu-Mg-Mn/Zr

机译:Al-Zn-Cu-Mg-Mn / Zr的环境疲劳裂纹表面结晶学

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摘要

The scanning electron microscope (SEM)–based electron backscattered diffraction (EBSD)/stereology technique quantitatively establishes distributions of the crystallographic characteristics of environmental-fatigue crack features for slightly overaged Al-Zn-Cu-Mg-X (X = Zr or Mn) alloys stressed in the low-growth-rate regime. Results for these homogeneous slip alloys conform to a substantial companion study of planar slip-prone Al-Cu-Mg/Li. Transgranular-crack characteristics are similar for the Mn and Zr variants, independent of grain size and recrystallization. Two morphologies of facetlike features exhibit a wide range of crystallographic orientations, change character at grain boundaries indicating an important role of grain orientation, and form in highly tensile-stressed spatial orientations about a crack tip. Similar characteristics for Al-Zn and Al-Cu suggest a common damage mechanism, speculatively attributed to hydrogen-environment embrittlement by decohesion. Slip-deformation band cracking resulting in facets near {111}, stimulated by H-enhanced localized plasticity, is not a viable mechanism for environmental fatigue. Repetitively stepped facets with surface curvature may involve H-enhanced cleavage along {100} or {110} planes subsequently distorted by plasticity. Broad-flat facets speculatively result from tensile stress-based cracking through dislocation cell structure, evolved by cyclic plasticity and containing trapped H.
机译:基于扫描电子显微镜(SEM)的电子背散射衍射(EBSD)/体视学技术定量建立了稍微老化的Al-Zn-Cu-Mg-X(X = Zr或Mn)的环境疲劳裂纹特征的晶体学特征分布在低生长速率下受应力的合金。这些均质滑爽合金的结果符合平面易滑的Al-Cu-Mg / Li的大量伴随研究。 Mn和Zr变体的跨晶裂纹特征相似,与晶粒尺寸和重结晶无关。小面状特征的两种形态表现出广泛的晶体学取向,晶界处的变化特征指示晶粒取向的重要作用,并在裂纹尖端附近的高拉伸应力空间取向中形成。 Al-Zn和Al-Cu的相似特征提示了一种常见的损伤机理,推测是由于脱粘作用导致氢环境脆化。 H增强的局部可塑性引起的滑移变形带裂纹导致{111}附近的小面,不是解决环境疲劳的可行方法。具有表面曲率的重复阶梯状小平面可能涉及沿{100}或{110}平面的H增强劈裂,随后被塑性变形。宽平面刻面推测是由位错单元结构引起的基于拉伸应力的裂纹所致,该裂纹是由循环可塑性演化而来的,并且包含捕获的H。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2008年第6期|1449-1465|共17页
  • 作者单位

    Department of Materials Science and Engineering University of Virginia Charlottesville VA 22904-4745 USA;

    Department of Materials Science and Engineering University of Virginia Charlottesville VA 22904-4745 USA;

    Department of Materials Science and Engineering University of Virginia Charlottesville VA 22904-4745 USA;

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