Microstructure evolution in fine-grained microalloyed steels

被引:4
作者
Lottey, KR [1 ]
Militzer, M [1 ]
机构
[1] Univ British Columbia, Ctr Met Proc Engn, Vancouver, BC V6T 1Z4, Canada
来源
MICROALLOYING FOR NEW STEEL PROCESSES AND APPLICATIONS | 2005年 / 500-501卷
关键词
microstructure; fine-grained steel; continuous cooling; ferrite; transformation; modeling;
D O I
10.4028/www.scientific.net/MSF.500-501.347
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
There is an increasing emphasis to develop novel hot-rolled high strength steels with fine and ultra fine grain sizes for structural and other applications. Traditionally the concept of microalloying has been employed to refine microstructures thereby obtaining increased strength levels. For example, employing an alloying strategy with Nb, Ti and Mo is promising to attain yield strength levels of 700MPa and beyond. In the present study, the transformation behaviour is investigated for a HSLA steel containing 0.05wt%C-1.65wt%Mn-0.20wt%Mo-0.07wt%Nb0.02wt%Ti. The ferrite formation from work-hardened austenite has been studied for simulated run-out table cooling conditions employing a Gleeble 3500 thermomechanical simulator equipped with a dilatometer. The effects of cooling rate and initial austenite microstructure, i.e. austenite grain size and degree of work hardening, on the austenite decomposition kinetics and resulting ferrite grain size have been quantified. Based on the experimental results, a phenomenological transformation and ferrite grain size model is proposed for run-out table cooling conditions. The transformation model includes submodels for transformation start and ferrite growth. The latter is described using a Johnson-Mehl-Avrami-Kolmogorov approach. The degree of work hardening is incorporated by introducing an effective austenite grain size as a function of the strain applied under no-recrystallization condition. The ferrite grain size can be predicted as a function of the transformation start temperature. Increasing both cooling rate and amount of work hardening can optimize ferrite grain refinement. In the present steel, ferrite grain sizes of as low as 2 mu m have been obtained in this way. The results observed for the present steel are compared to the transformation behaviour in previously studied Nb-Ti HSLA steels of similar strength levels.
引用
收藏
页码:347 / 354
页数:8
相关论文
共 12 条
[1]  
COLLINS LE, 1998, MAT RESOURCE RECOVER, P251
[2]   Analysis of the austenite grain size distribution in plain carbon steels [J].
Giumelli, AK ;
Militzer, M ;
Hawbolt, EB .
ISIJ INTERNATIONAL, 1999, 39 (03) :271-280
[3]   A MATHEMATICAL-MODEL TO PREDICT THE MECHANICAL-PROPERTIES OF HOT ROLLED C-MN AND MICROALLOYED STEELS [J].
HODGSON, PD ;
GIBBS, RK .
ISIJ INTERNATIONAL, 1992, 32 (12) :1329-1338
[4]  
Lacroix S, 2003, AUSTENITE FORMATION AND DECOMPOSITION, P367
[5]  
Lottey R, 2004, ULTRA-FINE STRUCTURED STEELS, P87
[6]  
Militzer M, 1997, ACCELERATED COOLING/DIRECT QUENCHING OF STEELS, CONFERENCE PROCEEDINGS FROM MATERIALS SOLUTION '97, P151
[7]   Ferrite nucleation and growth during continuous cooling [J].
Militzer, M ;
Pandi, R ;
Hawbolt, EB .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1996, 27 (06) :1547-1556
[8]   Microstructural model for hot strip rolling of high-strength low-alloy steels [J].
Militzer, M ;
Hawbolt, EB ;
Meadowcroft, TR .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2000, 31 (04) :1247-1259
[9]   Modelling of microstructure evolution during hot rolling of a 780 MPa high strength steel [J].
Nakata, N ;
Militzer, M .
ISIJ INTERNATIONAL, 2005, 45 (01) :82-90
[10]  
SUEHIRO M, 1987, T IRON STEEL I JPN, V27, P439