steel research international · 2019 · 29 citations · 21 references
EngineeringMechanical EngineeringHigh Strength Low Alloy SteelStructural MaterialsSolidificationInclusion FormationAlloysMaterials EngineeringMaterials ScienceMetallurgical InteractionEnergy‐dispersive X‐ray SpectroscopyAl 2Aln InclusionsMicrostructureLight‐weight Fe–mn–al SteelsMaterials CharacterizationApplied PhysicsObserved InclusionsMetallurgical ProcessMetal Processing
Herein, the effect of Mn content on the characteristics and the formation of inclusions in light‐weight Fe–Mn–Al steels is investigated. Three laboratory‐produced steels, containing different manganese contents (2%, 5%, and 20%) are investigated. 2D and 3D inclusion characterization methods are used to establish inclusion classification rules for oxide, sulfide, and nitride inclusions using an automated scanning electron microscope (SEM) equipped with energy‐dispersive X‐ray spectroscopy (EDS) (ASPEX system). The observed inclusions are classified into Al 2 O 3(pure) , Al 2 O 3 –MnS, AlN (pure) , AlN–MnS, AlON–MnS, AlON, and MnS. The results show that an increased Mn content of steel increases the number of inclusions, especially Al 2 O 3 –MnS and AlN–MnS inclusions. In the case of Al 2 O 3 –MnS inclusions, Al 2 O 3 inclusions serve as the site for precipitation of MnS. Thermodynamic calculations suggest that the AlN‐containing inclusions formed during cooling and solidification of steels. Moreover, the formation of AlN–MnS inclusions can take place by the nucleation of MnS on AlN inclusions and vice versa.
21
The Thermodynamics of Liquid Dilute Iron Alloys
Geoffrey K. Sigworth, John F. Elliott · Metal Science · 1974 · 841 citations
Materials Characterization · 1996 · 109 citations
High Strength Low Alloy Steel, Engineering, Metal Processing +1