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Influence of the microstructure on steel hardening in pulsed plasma nitriding

机译:微观结构对脉冲等离子体氮化钢硬化的影响

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摘要

The plasma technologies are widely used in metal surface engineering processes. Basically, these treatments improve the mechanical, tribological, and chemical properties of the material such as wear resistance, hardness, fatigue resistance, friction, and corrosion resistance. In this work, a comprehensive study of the influence of the microstructure on hardness of AISI P20 steel treated at different temperatures and times by pulsed plasma nitriding is reported. The processes were done by using a pulsed plasma industrial system. The samples were characterized by nano-indentation (hardness), x-ray diffraction (XRD), scanning electron microscopy (SEM), and x-ray dispersion spectroscopy (EDS). At lower treatment temperatures (360 degrees C), a high density of small lamellar precipitates, constituted by more epsilon-Fe2-3N phase than gamma(')-Fe4N phase, is formed. At intermediate treatment temperatures (480 degrees C), big lamellar precipitates, constituted by more gamma(')-Fe4N phase than epsilon-Fe2-3N phase, are formed at grain boundary. At higher treatment temperatures (520 degrees C), the nitrided layer does not contain lamellar precipitates and it is only constituted by alpha-Fe phase saturated in nitrogen. Hardness depends on size, shape, and distribution of precipitates and crystalline phases (microstructure). The higher hardness values are obtained when more and smaller lamellar precipitates are presented and constituted by more epsilon-Fe2-3N phase.
机译:等离子体技术广泛用于金属表面工程过程。基本上,这些处理改善了材料的机械,摩擦学和化学性质,如耐磨性,硬度,疲劳性,摩擦和耐腐蚀性。在这项工作中,据报道,综合研究了微观结构对不同温度处理的AISI P20钢硬度的综合研究及脉冲等离子体氮化的时间。通过使用脉冲等离子体工业系统来完成该过程。通过纳米凹口(硬度),X射线衍射(XRD),扫描电子显微镜(SEM)和X射线色散光谱(EDS)以纳米缩进(硬度)为特征。在较低的处理温度(360℃)下,形成由比γ(')-FE4N相的更多Epsilon-Fe 2 -3N相构成的小密封沉淀物。在中间处理温度(480℃)的中,在晶界形成,由比Epsilon-Fe 2 -3N相的更多γ(')-Fe4N相构成的大层状沉淀物。在较高的处理温度(520℃)下,氮化层不含层状沉淀物,并且它仅被氮气饱和的α-Fe相构成。硬度取决于沉淀物和结晶相的尺寸,形状和分布(微观结构)。当更多且较小的层状沉淀物被提出并由更多Epsilon-Fe 2 -3N相构成时,获得较高的硬度值。

著录项

  • 作者

    E. A. Ochoa; C. A. Figueroa;

  • 作者单位
  • 年度 2008
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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