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Superplastic deformation behavior of Zn-22% Al alloy investigated by nanoindentation at elevated temperatures

机译:纳米压痕研究高温下Zn-22%铝合金的超塑性变形行为

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摘要

Due to their high ductility, superplastic metallic alloys are promising candidates for microforming processes. However, it is not yet clear if the macroscopically observed superplastic material behavior also persists at micrometric length scales. For this reason, the superplastic deformation behavior of the eutectoid alloy Zn-22% Al was investigated at the microscale as a function of temperature, strain-rate and grain-size. Nanoindentation strain-rate jump tests at room temperature and elevated temperatures were correlated with the deformed microstructure. A sigmoidal relationship between the hardness and the strain-rate is evidenced, which is typical for superplastic alloys at the macroscale. In the central part of the sigmoidal curve strong indications for superplastic flow at the microscale are found. Microstructural investigations of the residual indents reveal noticeable intercrystalline deformation processes in combination with some intracrystalline dislocation activity regardless of the applied testing conditions. These experimental findings were further coupled with finite element analysis to determine the size of the plastic zone beneath the indents as a function of the penetration depth. Based on this, a critical cubic material volume of 8 grains over the edge length is found to be sufficient for superplastic flow at local length scales. (C) 2018 Elsevier Ltd. All rights reserved.
机译:由于它们的高延展性,超塑性金属合金有望成为微成型工艺的候选材料。然而,尚不清楚在宏观上观察到的超塑性材料行为是否还在微米长度尺度上持续存在。因此,在微观尺度上研究了共析合金Zn-22%Al的超塑性变形行为,该行为是温度,应变速率和晶粒尺寸的函数。室温和高温下的纳米压痕应变率跳跃测试与变形的微观结构相关。硬度和应变率之间呈S形关系,这在超大型合金中是典型的。在S形曲线的中心部分,可以找到微观尺度上超塑性流动的强烈迹象。残余压痕的微观结构研究显示了明显的晶间变形过程,并结合了某些晶内位错活性,而与所采用的测试条件无关。这些实验结果还与有限元分析相结合,以确定凹痕下方塑性区的大小与穿透深度的关系。基于此,发现在边缘长度上具有8个晶粒的临界立方材料体积足以在局部长度尺度上实现超塑性流动。 (C)2018 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Materials & design》 |2018年第9期|71-79|共9页
  • 作者

    Feldner P.; Merle B.; Goeken M.;

  • 作者单位

    Friedrich Alexander Univ Erlangen Nuremberg FAU, Inst 1, Mat Sci & Engn, Erlangen, Germany;

    Friedrich Alexander Univ Erlangen Nuremberg FAU, Inst 1, Mat Sci & Engn, Erlangen, Germany;

    Friedrich Alexander Univ Erlangen Nuremberg FAU, Inst 1, Mat Sci & Engn, Erlangen, Germany;

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

    Nanoindentation; Superplasticity; Deformation mechanism; Microforming;

    机译:纳米压痕;超塑性;变形机理;微成型;

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