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Modelling the evolution of composition-and stress-depth profiles in austenitic stainless steels during low-temperature nitriding:Paper

机译:模拟奥氏体不锈钢在低温氮化过程中的成分和应力 - 深度剖面的演变:论文

摘要

Nitriding of stainless steel causes a surface zone of expanded austenite, which improves the wear resistance of the stainless steel while preserving the stainless behaviour. During nitriding huge residual stresses are introduced in the treated zone, arising from the volume expansion that accompanies the dissolution of high nitrogen contents in expanded austenite. An intriguing phenomenon during low-temperature nitriding is that the residual stresses evoked by dissolution of nitrogen in the solid state, affect the thermodynamics and the diffusion kinetics of nitrogen dissolution. In the present paper solid mechanics was combined with thermodynamics and diffusion kinetics to simulate the evolution of composition-depth and stress-depth profiles resulting from nitriding. The model takes into account a composition-dependent diffusion coefficient of nitrogen in expanded austenite, short range ordering (trapping) of nitrogen atoms by chromium atoms, and the effect of composition-induced stress on surface concentration and diffusive flux. The effect of plasticity and concentration-dependence of the yield stress was also included.
机译:不锈钢的渗氮会导致奥氏体膨胀,从而在保持不锈钢性能的同时提高了不锈钢的耐磨性。在氮化期间,由于伴随着高氮含量溶解在膨胀奥氏体中的体积膨胀而在处理区中引入了巨大的残余应力。低温氮化过程中一个令人着迷的现象是,固态氮溶解引起的残余应力会影响氮溶解的热力学和扩散动力学。在本文中,将固体力学与热力学和扩散动力学相结合,以模拟氮化引起的成分深度和应力深度分布的演变。该模型考虑了氮在膨胀奥氏体中的成分依赖性扩散系数,氮原子被铬原子短距离排序(捕获)以及成分诱导的应力对表面浓度和扩散通量的影响。还包括屈服应力的可塑性和浓度依赖性的影响。

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