The effect of finish rolling temperature and tempering on the microstructure, mechanical properties and dislocation density of direct-quenched steel

被引:70
作者
Saastamoinen, Ari [1 ]
Kaijalainen, Antti [1 ]
Porter, David [1 ]
Suikkanen, Pasi [2 ]
Yang, Jer-Ren [3 ]
Tsai, Yu-Ting [3 ]
机构
[1] Univ Oulu, Ctr Adv Steels Res, PL 8000, Oulu 90014, Finland
[2] SSAB Europe Oy, Rautaruukintie 155, Raahe 92100, Finland
[3] Natl Taiwan Univ, Dept Mat Sci & Engn, 1,Sec 4,Roosevelt Rd, Taipei 10617, Taiwan
关键词
Martensite; Direct quenching; Tempering; Dislocation density; Microstructure; Mechanical properties; LATH MARTENSITE; NEUTRON-DIFFRACTION; FE-C; STRENGTH; AUSTENITE; TRANSFORMATION;
D O I
10.1016/j.matchar.2018.02.026
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A unique batch tempering treatment for industrial scale direct-quenched steel coils has been studied using laboratory simulations. The tempering treatment was non-isothermal with slow heating to 570 degrees C and slow cooling to simulate the tempering of large steel coils. The paper presents the effect of finishing rolling temperature (FRT) relative to the non-recrystallization temperature (T-NR) and the effect of long time tempering on the micro-structure, dislocation density and mechanical properties of direct-quenched coiled strips. Conditioning austenite below the recrystallization stop temperature resulted in a finer effective grain size distribution, which correlated strongly with the impact toughness of the final product. Furthermore low finish rolling temperature resulted in partially ferritic microstructures while higher finishing rolling temperatures led to mixtures of bainite and martensite. Dislocation densities determined with TEM and XRD showed somewhat different trends regarding the effect of tempering: infra-lath dislocation density, as measured with TEM, showed a statistically significant drop in only one case, while XRD analysis indicated a drop in all cases. Furthermore, no significant correlation between finishing rolling temperature and dislocation density existed in XRD studies. The XRD results indicate that the decrease in dislocation density corresponds to about 100 MPa lower dislocation strengthening. However, precipitation hardening and potential internal micro stress relief compensates this as yield strength remains unchanged or even increases during tempering.
引用
收藏
页码:1 / 10
页数:10
相关论文
共 40 条
[1]  
ANDREWS KW, 1965, J IRON STEEL I, V203, P721
[2]  
Bhadeshia H. K. D. H., 2015, BAINITE STEELS THEOR
[3]  
Bhadeshia HKDH, 2006, TEMPERING MARTENSITE, P183
[4]  
Boratto F., 1988, International Conference on Physical Metallurgy of Thermomechanical Processing of Steels and Other Metals (THERMEC), P383
[5]  
Brownrigg A., 1975, Metallography, V8, P529, DOI 10.1016/0026-0800(75)90028-2
[6]   TEMPERING OF FE-C LATH MARTENSITE [J].
CARON, RN ;
KRAUSS, G .
METALLURGICAL TRANSACTIONS, 1972, 3 (09) :2381-&
[7]   Neutron diffraction in situ monitoring of the dislocation density during martensitic transformation in a stainless steel [J].
Christien, F. ;
Telling, M. T. F. ;
Knight, K. S. .
SCRIPTA MATERIALIA, 2013, 68 (07) :506-509
[8]  
DUTTA B, 1987, MATER SCI TECH SER, V3, P197, DOI 10.1179/026708387790122846
[9]   A Comparison of the tanh and Exponential Fitting Methods for Charpy V-Notch Energy Data [J].
EricksonKirk, Marjorie Ann ;
EricksonKirk, Mark T. ;
Rosinski, Stan ;
Spanner, Jack .
JOURNAL OF PRESSURE VESSEL TECHNOLOGY-TRANSACTIONS OF THE ASME, 2009, 131 (03)
[10]   THE DETERMINATION OF DISLOCATION DENSITIES IN THIN FILMS [J].
HAM, RK .
PHILOSOPHICAL MAGAZINE, 1961, 6 (69) :1183-1184