Multi-phase microstructure design of a novel high strength TRIP steel through experimental methodology


Autoria(s): Wang,C; Ding,H; Cai,M; Rolfe,B
Data(s)

29/07/2014

Resumo

The multi-phase structure of a novel low-alloy transformation induced plasticity (TRIP) steel was designed through experimental analysis. The evolutions of both microstructure and mechanical properties during the two-stage heat treatment were analyzed. The phase transformations during the intercritical annealing and the isothermal bainitic transformation were investigated by means of dilatometry. It was shown that two types of C diffusion were detected during intercritical annealing and a complex microstructure was formed after heat treatment. The processing parameters were selected in such a way to obtain microstructures with systematically different volume fractions of ferrite, bainite and retained austenite. The volume fractions of ferrite and retained austenite were found to be two main factors controlling the ductility. Furthermore, a high volume fraction of C-rich retained austenite, which was stabilized at room temperature, was the origin of a TRIP effect. The resulting material demonstrates a significant improvement in the ultimate tensile strength (1077. MPa) with good uniform elongation (22.5%), as compared to conventional TRIP steels. © 2014 Elsevier B.V.

Identificador

http://hdl.handle.net/10536/DRO/DU:30071529

Idioma(s)

eng

Publicador

Elsevier BV

Relação

http://dro.deakin.edu.au/eserv/DU:30071529/wang-multiphasemicrostructure-2014.pdf

http://www.dx.doi.org/10.1016/j.msea.2014.05.063

Direitos

2014, Elsevier BV

Palavras-Chave #Alloying element #Intercritical annealing #Isothermal bainitic transformation #Retained austenite #TRIP effect #Science & Technology #Technology #Nanoscience & Nanotechnology #Materials Science, Multidisciplinary #Metallurgy & Metallurgical Engineering #Science & Technology - Other Topics #Materials Science #INDUCED PLASTICITY STEELS #AIDED SHEET STEELS #MECHANICAL-PROPERTIES #PHASE-TRANSFORMATION #SI #NB #AL #DEFORMATION #STABILITY
Tipo

Journal Article