渗氮
旋节分解
材料科学
热力学
三元运算
冶金
氮化物
相(物质)
吉布斯自由能
电负性
旋节
表面能
马氏体
固溶体
图层(电子)
微观结构
化学
纳米技术
复合材料
有机化学
物理
计算机科学
程序设计语言
作者
Jiawei Yao,Fuyao Yan,Mufu Yan,Yanxiang Zhang,Dafan Huang,Yueming Xu
标识
DOI:10.1016/j.apsusc.2019.05.164
摘要
Motivated by the observation of in-situ nanocrystallization in the surface layer of plasma nitrided steels, this work is carried out to establish a thermodynamic model that describes the Gibbs free energy of BCC-Fe solution using the quasi-binary solution model. The model is specifically developed for the nitriding process of the multi-component steels, whose composition is first converted to an Fe-Creq-N ternary system using the concept of Cr equivalent through the relative elemental electronegativities with respect to nitrogen. With the thermodynamic model, the limit of stability of the BCC pseudo binary solution can be evaluated with temperatures and used to guide the selection of nitriding conditions. It has been recognized that the nitrogen-containing martensite is unstable and likely to decompose in the form of spinodal decomposition over a specific compositional/temperature range. 40CrNi steel is adopted in this work and plasma nitrided at 800 K for 8 h. Nano-scale FeN1/12 phase and high‑nitrogen martensite phase have been experimentally observed in the nitrided surface layer, which embraces the thermodynamic predictions in terms of nanocrystallization via spinodal decomposition.
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