首页> 外文会议>International conference on superplasticity in advanced materials >Effect of Grain Refinement on the Elemental Composition and Nanohardness of the Surface Layers in AISI 316L Austenitic Steel Subjected to Ion-Plasma Hardening
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Effect of Grain Refinement on the Elemental Composition and Nanohardness of the Surface Layers in AISI 316L Austenitic Steel Subjected to Ion-Plasma Hardening

机译:细化对离子等离子淬火AISI 316L奥氏体钢表面层的元素组成和纳米硬度的影响

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We study the effect of the grain refinement on the elemental composition and nanohardness of the surface layers in AISI 316L austenitic steel processed by ion-plasma hardening. Ion-plasma hardening of the samples with (1) grain-subgrain (with high dislocation density) and (2) coarse-grained structures causes a surface hardening and formation of the composite layers with a thickness of about 20 μm. The nanohardness and depth profiles of elemental concentration of nitrogen, carbon and oxygen in the ion-plasma hardened layers depends on pretreatment regime of the steel specimens. Cold rolling causes an increase in the grain and subgrain boundaries fraction and dislocation density in steel specimens, provides more intensive accumulation of interstitial atoms in thin surface 5 μm-layer, leads to additional surface hardening and suppress carbon diffusion into depth of the specimens as compared with coarse-grained structure.
机译:我们研究了晶粒细化对离子等离子体硬化处理的AISI 316L奥氏体钢表面层的元素组成和纳米硬度的影响。具有(1)晶粒亚晶粒(具有高位错密度)和(2)粗糙晶粒结构的样品的离子等离子体硬化导致表面硬化并形成厚度约20μm的复合层。离子等离子体硬化层中氮,碳和氧的元素浓度的纳米硬度和深度分布取决于钢样品的预处理方式。冷轧导致钢试样中晶界和亚晶界分数的增加和位错密度的增加,间隙原子在5μm薄层表面上更密集地积累,导致额外的表面硬化并抑制碳扩散到试样的深度具有粗粒度的结构。

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