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Mechanism of mechanical property enhancement in nitrogen and titanium implanted 321 stainless steel

机译:氮和钛植入的321不锈钢的力学性能增强机理

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Ion implantation is a well-known method to modify surface mechanical properties. The improvement of the mechanical properties can usually be attributed to the formation of new strengthening phases, solution strengthening, dislocation strengthening, or grain refinement. However, in many cases, the roles of individual factors are not clear. In this study, we implanted nitrogen and titanium into 321 stainless steel samples to investigate the enhancement mechanism of the mechanical properties. Nano-indentation experiments were conducted to measure the hardness under various loadings. The N and Ti implanted 321 stainless steel samples were found to behave differently in the hardness (GPa) versus depth (nm) diagram. The effects of the radiation damage, solution strengthening, and dispersion strengthening phase were analyzed. Characterization of the modified layers was performed using techniques such as Auger electron spectroscopy (AES) and grazing incidence X-ray diffraction (GIXRD). Transmission electron microscopy (TEM) and X-ray diffraction were also applied to reveal the structure of the untreated 321 stainless steel.
机译:离子注入是一种众所周知的改变表面机械性能的方法。机械性能的改善通常可归因于新的强化相的形成,固溶强化,位错强化或晶粒细化。但是,在许多情况下,各个因素的作用尚不清楚。在这项研究中,我们将氮和钛注入321个不锈钢样品中,以研究机械性能的增强机制。进行纳米压痕实验以测量各种载荷下的硬度。发现植入N和Ti的321个不锈钢样品在硬度(GPa)与深度(nm)图中表现不同。分析了辐射损伤,固溶强化和弥散强化阶段的影响。改性层的表征使用俄歇电子能谱(AES)和掠入射X射线衍射(GIXRD)等技术进行。还应用透射电子显微镜(TEM)和X射线衍射来揭示未经处理的321不锈钢的结构。

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