A Novel Mo and Nb Microalloyed Medium Mn TRIP Steel with Maximal Ultimate Strength and Moderate Ductility


Autoria(s): Cai, Minghui; Li, Zhun; Chao, Qi; Hodgson, Peter D
Data(s)

01/11/2014

Resumo

The multi-phase, metastable, and multi-scale (M3) constitution of a novel transformation-induced plasticity (TRIP) steel (Fe-0.17C-6.5Mn-1.1Al-0.22Mo-0.05Nb, wt pct) was designed through thermodynamic calculations combined with experimental analysis. In this study, Mo and Nb microalloying was used to control the fraction of retained austenite and its mechanical stability during tensile deformation and to improve the yield strength. Thermodynamic calculations were developed to determine the critical annealing temperature, at which a large fraction of retained austenite (~38 pct) would be obtained through the effects of solute enrichment. The experimental observation was in good agreement with the predicted results. According to the critical annealing temperature, such an ultrafine (<200 nm) M3, microstructure with optimum mechanical stability was successfully achieved. The results of this work demonstrated the superior performance with improved yield strength of 1020 to 1140 MPa and excellent ductility (>30 pct), as compared with other TRIP steels. Both angle-selective backscatter and electron backscatter diffraction techniques were employed to interpret the transformation from the deformed martensitic laths to the ultrafine austenite and ferrite duplex structure.

Identificador

http://hdl.handle.net/10536/DRO/DU:30070427

Idioma(s)

eng

Publicador

Springer

Relação

http://dro.deakin.edu.au/eserv/DU:30070427/cai-anovelmoandnb-2014.pdf

http://www.dx.doi.org/10.1007/s11661-014-2504-x

Direitos

2014, Springer

Palavras-Chave #Science & Technology #Technology #Materials Science, Multidisciplinary #Metallurgy & Metallurgical Engineering #Materials Science #INDUCED PLASTICITY STEEL #LOW-CARBON STEEL #MECHANICAL-PROPERTIES #DYNAMIC RECRYSTALLIZATION #REVERSE TRANSFORMATIONS #AUSTENITE STABILITY #INDUCED MARTENSITE #GRAIN-SIZE #MICROSTRUCTURE #ALLOY
Tipo

Journal Article