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Duplex surface treatment of sintered iron by plasma nitriding and plasma carburizing at low temperature

机译:通过等离子体氮化和等离子体渗碳在低温下对烧结铁的双工表面处理

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摘要

The aim of this study is to investigate the combination of plasma nitriding and plasma carburizing at low temperature. Samples of sintered pure iron were nitrided at 500 degrees C for 3 h under three different atmospheres: (1% N-2 + 99% H-2), (10% N-2 + 90% H-2), and (90% N-2 + 9% H-2 + 1% CH4), all followed by plasma carburizing at 500 degrees C for 3 h under a mixed atmosphere of 2% CH4 + 98% H-2. Microstructural characterization and chemical analysis of the layers were performed by scanning electron microscopy and energy-dispersive X-ray spectroscopy, respectively. Phase identification was carried out by grazing incidence X-ray diffraction. The layer hardness was verified by nanohardness and the case depth by Vickers microhardness. The results show that the post-carburizing treatment promotes the formation of a thin outermost cementite layer over the nitride layers, leading to a nitrided-carburized layer on the surface. The morphology and phase composition of the nitride layer influence the structural and mechanical properties of the nitrided-carburized layers. The best surface hardness improvement, approximately 72%, was achieved by the duplex treatment of nitriding with 1% N-2 content followed by a plasma carburizing at low temperature. Moreover, duplex nitriding-carburizing leads to deeper hardening depths when compared to simply nitrided samples.
机译:本研究的目的是研究等离子体氮化和等离子体渗碳在低温下的组合。烧结纯铁的样品在三种不同的大气中以500℃氮化3小时:(1%N-2 + 99%H-2),(10%N-2 + 90%H-2),和(90 %N-2 + 9%H-2 + 1%CH4),所有其次在500℃下渗碳在2%CH 4 + 98%H-2的混合气氛下以500℃渗碳3小时。通过扫描电子显微镜和能量分散X射线光谱来进行层的微观结构表征和层的化学分析。通过放牧入射X射线衍射进行相位鉴定。通过纳米腔性和壳体深度验证层硬度,通过维氏微硬度验证。结果表明,渗碳处理后促进在氮化物层上形成薄的最外渗透石层,导致表面上的氮化渗碳层。氮化物层的形态和相组合物影响氮化渗碳层的结构和机械性能。通过双相处理,通过氮化的双相处理,在低温下进行等离子体渗碳来实现最佳表面硬度提高约72%。此外,与简单的氮化样品相比,双相氮化渗碳导致更深的硬化深度。

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