Cu precipitation kinetics during martensite tempering in a medium C steel

被引:63
作者
Jung, Jae-Gil [1 ]
Jung, Minsu [1 ]
Lee, Sang-Min [1 ]
Shin, Eunjoo [2 ]
Shin, Han-Chul [3 ]
Lee, Young-Kook [1 ]
机构
[1] Yonsei Univ, Dept Mat Sci & Engn, Seoul 120749, South Korea
[2] Korea Atom Energy Res Inst, Div Neutron Sci, Taejon 305353, South Korea
[3] POSCO Tech Lab, Prod Solut Res Grp, Inchon 406840, South Korea
关键词
Metals and alloys; Precipitation; Phase transition; Microstructure; Transmission electron microscopy (TEM); Neutron diffraction; RESOLUTION ELECTRON-MICROSCOPY; COPPER PRECIPITATION; PHASE-TRANSFORMATION; BEHAVIOR; ALLOY; RESISTIVITY; PARTICLES; FERRITE; SEGREGATION;
D O I
10.1016/j.jallcom.2012.11.108
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The Cu precipitation kinetics during martensite tempering of an Fe-0.44C-0.60Mn-0.21Si-0.11Cr-1.53Cu (wt.%) steel was quantitatively investigated by separating the Cu precipitation from the cementite precipitation through electrical resistivity, small-angle neutron scattering (SANS), dilatometry, and thermodynamic calculations. The cementite precipitation was already finished during continuous heating to 450 degrees C, and then Cu precipitation occurred above 450 degrees C. The Cu precipitation kinetics was accelerated with increasing tempering temperature. The fcc epsilon-Cu particles were precipitated mainly at cementite interfaces, while bcc Cu-rich particles were formed in the tempered martensite matrix, and transformed to 9R, 3R, and fcc epsilon-Cu during further tempering, resulting in higher hardness of a medium C steel. The activation energy for isothermal Cu precipitation (64.9 +/- 13.3 kJ/mol) during martensite tempering of the present medium C steel was even lower than that of a low C steel due to the greater cementite fraction. (C) 2012 Elsevier B.V. All rights reserved.
引用
收藏
页码:299 / 307
页数:9
相关论文
共 55 条
[1]   Composition and magnetic character of nanometre-size Cu precipitates in reactor pressure vessel steels: implications for nuclear power plant lifetime extension [J].
Asoka-Kumar, P ;
Wirth, BD ;
Sterne, PA ;
Howell, RH ;
Odette, GR .
PHILOSOPHICAL MAGAZINE LETTERS, 2002, 82 (11) :609-615
[2]  
ASTM, 2002, ASTM F1980-02, P1
[3]   Study on copper precipitation during continuous heating and cooling of HSLA steels using electrical resistivity [J].
Bhagat, A. N. ;
Pabi, S. K. ;
Ranganathan, S. ;
Mohanty, O. N. .
MATERIALS SCIENCE AND TECHNOLOGY, 2007, 23 (02) :158-164
[4]   The precipitation of copper in abnormal ferrite and pearlite in hyper-eutectoid steels [J].
Chairuangsri, T ;
Edmonds, DV .
ACTA MATERIALIA, 2000, 48 (15) :3931-3949
[5]  
Christian J.W., 1975, THEORY TRANSFORMATIO, V2nd, P525
[6]   COARSENING BEHAVIOR OF CEMENTITE PARTICLES IN A FERRITE MATRIX IN 10B30-STEEL [J].
DEB, P ;
CHATURVEDI, MC .
METALLOGRAPHY, 1982, 15 (04) :341-354
[7]   A HIGH-RESOLUTION ELECTRON-MICROSCOPY STUDY OF COPPER PRECIPITATION IN FE-1-CENTER-DOT-5 WT-PERCENT CU UNDER ELECTRON-IRRADIATION [J].
DUPARC, HAH ;
DOOLE, RC ;
JENKINS, ML ;
BARBU, A .
PHILOSOPHICAL MAGAZINE LETTERS, 1995, 71 (06) :325-333
[8]  
DYSON DJ, 1970, J IRON STEEL I, V208, P469
[9]   Origin of copper precipitation strengthening in steel revisite [J].
Fine, ME ;
Isheim, D .
SCRIPTA MATERIALIA, 2005, 53 (01) :115-118
[10]   MICROSCOPIC CHARACTERIZATION OF EPSILON-CU INTERPHASE PRECIPITATION IN HYPEREUTECTOID FE-C-CU ALLOYS [J].
FOURLARIS, G ;
BAKER, AJ ;
PAPADIMITRIOU, GD .
ACTA METALLURGICA ET MATERIALIA, 1995, 43 (07) :2589-2604