Improvement in Grain Size Distribution Uniformity for Nuclear-Grade Austenitic Stainless Steel through Thermomechanical Treatment

被引:1
作者
Wang, Yong [1 ,2 ]
Xue, Weiwei [3 ]
Pang, Zongxu [2 ]
Zhao, Zichen [3 ]
Liu, Zhuohua [3 ]
Liu, Chenyuan [3 ]
Gao, Fei [3 ]
Li, Weijuan [1 ]
机构
[1] Univ Sci & Technol Liaoning, Sch Mat & Met, Anshan 114051, Peoples R China
[2] Iron & Steel Res Inst Ansteel Grp Corp, Anshan 114001, Peoples R China
[3] Northeastern Univ, Sch Mat Sci & Engn, Key Lab Lightweight Struct Mat Liaoning Prov, Shenyang 110819, Peoples R China
关键词
nuclear-grade austenitic stainless steel; microstructure uniformity; recrystallization nucleation; thermomechanical treatment; rolling reduction; MECHANICAL-PROPERTIES; 316LN STEEL; EVOLUTION; RECRYSTALLIZATION; CORROSION; BEHAVIOR; MICROSTRUCTURE; REFINEMENT; GROWTH; MODEL;
D O I
10.3390/ma17102313
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
In this work, thermomechanical treatment (single-pass rolling at 800 degrees C and solution treatment) was applied to nuclear-grade hot-rolled austenitic stainless steel to eliminate the mixed grain induced by the uneven hot-rolled microstructure. By employing high-temperature laser scanning confocal microscopy, microstructure evolution during solution treatment was observed in situ, and the effect of single-pass rolling reduction on it was investigated. In uneven hot-rolled microstructure, the millimeter-grade elongated grains (MEGs) possessed an extremely large size and a high Schmid factor for slip compared to the fine grains, which led to greater plastic deformation and increased dislocation density and deformation energy storage during single-pass rolling. During subsequent solution treatment, there were fewer nucleation sites for the new grain, and the grain boundary (GB) was the main nucleation site in MEGs at a lower rolling reduction. In contrast, at a higher reduction, increased uniformly distributed rolling deformation and more nucleation sites were developed in MEGs. As the reduction increased, the number of in-grain nucleation sites gradually exceeded that of GB nucleation sites, and in-grain nucleation preferentially occurred. This was beneficial for promoting the refinement of new recrystallized grains and a reduction in the size difference of new grains during recrystallization. The single-pass rolling reduction of 15-20% can effectively increase the nucleation sites and improve the uniformity of rolling deformation distribution in the MEGs, promote in-grain nucleation, and finally refine the abnormally coarse elongated grain, and eliminate the mixed-grain structure after solution treatment.
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页数:15
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共 32 条
[1]   Three-dimensional in situ characterization of phase transformation induced austenite grain refinement in nickel-titanium [J].
Bucsek, A. N. ;
Casalena, L. ;
Pagan, D. C. ;
Paul, P. P. ;
Chumlyakov, Y. ;
Mills, M. J. ;
Stebner, A. P. .
SCRIPTA MATERIALIA, 2019, 162 :361-366
[2]   Revealing austenite grain boundaries by thermal etching:: advantages and disadvantages [J].
de Andrés, CG ;
Caballero, FG ;
Capdevila, C ;
San Martín, D .
MATERIALS CHARACTERIZATION, 2002, 49 (02) :121-127
[3]   Current issues in recrystallization: a review [J].
Doherty, RD ;
Hughes, DA ;
Humphreys, FJ ;
Jonas, JJ ;
Jensen, DJ ;
Kassner, ME ;
King, WE ;
McNelley, TR ;
McQueen, HJ ;
Rollett, AD .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 1997, 238 (02) :219-274
[4]   Research on damage evolution and damage model of 316LN steel during forging [J].
Duan, X. W. ;
Liu, J. S. .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2013, 588 :265-271
[5]   Toughness under different rolling processes in ultra purified Fe-17 wt% Cr alloy steels [J].
Gao, Fei ;
Liu, Zhenyu ;
Liu, Haitao ;
Wang, Guodong .
JOURNAL OF ALLOYS AND COMPOUNDS, 2013, 567 :141-147
[6]   A review of dynamic recrystallization phenomena in metallic materials [J].
Huang, K. ;
Loge, R. E. .
MATERIALS & DESIGN, 2016, 111 :548-574
[7]   Mechanical properties of full austenitic welding joint at cryogenic temperature for the ITER toroidal field coil structure [J].
Iguchi, M. ;
Saito, T. ;
Kawano, K. ;
Chida, Y. ;
Nakajima, H. ;
Ogawa, T. ;
Katayama, Y. ;
Ogata, H. ;
Minemura, T. ;
Tokai, D. ;
Niimi, K. .
FUSION ENGINEERING AND DESIGN, 2013, 88 (9-10) :2520-2524
[8]   Tailoring the microstructure and mechanical properties of AISI 316L austenitic stainless steel via cold rolling and reversion annealing [J].
Kheiri, Sara ;
Mirzadeh, Hamed ;
Naghizadeh, Meysam .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2019, 759 :90-96
[9]   Grain boundary segregation, solute drag and abnormal grain growth [J].
Kim, Seong Gyoon ;
Park, Yong Bum .
ACTA MATERIALIA, 2008, 56 (15) :3739-3753
[10]   Effect of Grain Size on Mechanical Properties of Nickel-Free High Nitrogen Austenitic Stainless Steel [J].
Li Hua-bing ;
Jiang Zhou-hua ;
Mang Zu-rui ;
Yang Yan .
JOURNAL OF IRON AND STEEL RESEARCH INTERNATIONAL, 2009, 16 (01) :58-61