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Pop-in behavior and elastic-to-plastic transition of polycrystalline pure iron during sharp nanoindentation

机译:尖锐的纳米压痕过程中多晶纯铁的弹跳行为和弹塑性转变

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摘要

This study analyzes the elastic-to-plastic transition during nanoindentation of polycrystalline iron. We conduct nanoindentation (Berkovich indenter) experiments and electron backscatter diffraction analysis to investigate the initiation of plasticity by the appearance of the pop-in phenomenon in the loading curves. Numerous load–displacement curves are statistically analyzed to identify the occurrence of pop-ins. A first pop-in can result from plasticity initiation caused by homogeneous dislocation nucleation and requires shear stresses in the range of the theoretical strength of a defect-free iron crystal. The results also show that plasticity initiation in volumes with preexisting dislocations is significantly affected by small amounts of interstitially dissolved atoms (such as carbon) that are segregated into the stress fields of dislocations, impeding their mobility. Another strong influence on the pop-in behavior is grain boundaries, which can lead to large pop-ins at relatively high indentation loads. The pop-in behavior appears to be a statistical process affected by interstitial atoms, dislocation density, grain boundaries, and surface roughness. No effect of the crystallographic orientation on the pop-in behavior can be observed.
机译:本研究分析了多晶铁纳米压痕过程中的弹塑性转变。我们进行了纳米压痕(Berkovich压头)实验和电子背散射衍射分析,以通过在加载曲线中出现弹跳现象来研究可塑性的启动。对大量的载荷-位移曲线进行了统计分析,以识别弹跳的发生。第一次弹入可能是由均匀位错成核引起的可塑性引发而产生的,并且需要剪切应力在无缺陷铁晶体的理论强度范围内。结果还表明,在存在位错的情况下,体积的可塑性萌生受到少量间隙溶解的原子(例如碳)的显着影响,这些原子溶解在位错的应力场中,从而阻碍了它们的迁移。对弹出行为的另一个强大影响是晶界,它会在较高的压痕载荷下导致较大的弹出。弹出行为似乎是受间隙原子,位错密度,晶界和表面粗糙度影响的统计过程。没有观察到晶体取向对弹起行为的影响。

著录项

  • 期刊名称 Scientific Reports
  • 作者

    Fabian Pöhl;

  • 作者单位
  • 年(卷),期 -1(9),-1
  • 年度 -1
  • 页码 15350
  • 总页数 12
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

  • 入库时间 2022-08-21 10:57:23

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