A model of nitrogen-containing stainless steel with gradient nitrogen content has been developed and validated with thermodynamic calculation. High-temperature alloying processes for high carbon chromium bearing steels and austenitic stainless steels were developed. The hot working process of the gradient model was explored on austenitic steel grades; the relationship between nitrogen content, processing, and microstructure of nitrogen-containing steels was elucidated; an integrated model describing the interrelationship of nitrogen content, cold deformation degree, microstructure, and SFE was developed.
The proposed methodology and the developed model have proved valuable and in some cases transformative, in the contexts addressed by the project. For practical applications of severe surface deformation, the nitrogen content has its prime role in stabilizing austenite against strain-induced martensite formation, while plastic deformation determines the hardness profile. The important findings, the carbon and nitrogen activities, as imposed by the composition of the gas mixture associated with the applied parameters, have a decisive influence on the microstructural and compositional evolution as well as on the carbon/nitrogen diffusion kinetics, show promising applications on formulating the process of surface engineering for bearing industries. The other key exploitable result is the output of the integrated model describing the interrelationship of nitrogen content, deformation degree and deformation (micro) products.