Microstructure evolution and constitutive analysis of nuclear grade AISI-316H austenitic stainless steel during thermal deformation

被引:2
作者
Huang, Jian [1 ,2 ]
Pang, Zong-Xu [1 ,2 ]
Guan, Ji-Chun [3 ]
Fan, Liu-Qun [1 ,2 ]
Zhang, Jian-Ping [1 ,2 ]
Sun, Dian-Dong [1 ,2 ]
Wang, Yong [1 ,2 ]
机构
[1] State Key Lab Met Mat Marine Equipment & Applicat, Anshan 114009, Peoples R China
[2] Iron & Steel Res Inst Ansteel Grp Corp, Anshan 114009, Peoples R China
[3] Angang Steel Co Ltd, Anshan 114009, Peoples R China
关键词
austenitic stainless steel; dynamic recrystallization; flow stress; twin evolution; microstructure; hot deformation behavior; DYNAMIC RECRYSTALLIZATION BEHAVIOR; BOUNDARY-CHARACTER-DISTRIBUTION; ZENER-HOLLOMON PARAMETER; HOT DEFORMATION; STRAIN-RATE; ANNEALING TWINS; TITANIUM-ALLOY; COMPRESSION; FLOW; MECHANISM;
D O I
10.1088/2053-1591/ad07cb
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Compression experiments were performed on AISI-316H austenitic stainless steel using Gleeble-3800 at temperatures ranging from 900 degrees C and 1200 degrees C and strain rates ranging from 0.01 and 10 s-1, up to the actual strain of 0.69. The tests aimed to examine the material's microstructure evolution and flow stress behavior. Based on OM and EBSD studies, it was found that thermal deformation mostly induces discontinuous dynamic recrystallization (DDRX). The proportion of recrystallization nucleation increases steadily with increasing deformation temperature, while the impact of strain rate on recrystallization is complex. At the same deformation temperature, the recrystallization volume fraction initially declines and rises as the strain rate rises. In low strain rate regime, the longer (deformation) time available for grain boundary migration, the higher recrystallization volume fraction. In high strain rate regime, the higher stored energy (and thus the increased boundary velocity) raises the probability of nucleation events, stimulating twin formation. As a result, the twin promotes a dynamic recrystallization (DRX) process. An abundance of sigma 3 twins was notably observed in uniformly refined recrystallized grains at a true strain of 0.69, at a temperature of 1200 degrees C, and a strain rate of 10 s-1. As a result, it was discovered that DRX occurs at higher strain rates and deformation temperatures. In addition, the flow stress curves were modified to account for adiabatic heating at strain rates exceeding 1 s-1. The findings demonstrated that adiabatic heating increased when strain level and strain rate increased and deformation temperature decreased. The strain compensation Arrhenius model is developed following the given stress-strain curve while considering strain. The model exhibits high accuracy, with a correlation value of 0.986. According to a kinetic study, the average activation energy for hot deformation of the tested steel was 444.994 kJ/mol. These findings provide fundamental insights into the microstructure control technology and the outstanding mechanical properties of the austenitic stainless steel AISI-316H.
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页数:19
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[21]   Microstructure Evolution and Strain-Dependent Constitutive Modeling to Predict the Flow Behavior of 20Cr-24Ni-6Mo Super-Austenitic Stainless Steel During Hot Deformation [J].
Hao, Yan-Sen ;
Liu, Wan-Chun ;
Liu, Zhen-Yu .
ACTA METALLURGICA SINICA-ENGLISH LETTERS, 2018, 31 (04) :401-414
[22]   Correlation between Zener-Hollomon parameter and necklace DRX during hot deformation of 316 stainless steel [J].
Jafari, Meysam ;
Najafizadeh, Abbas .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2009, 501 (1-2) :16-25
[23]   Improvement of Transpassive Intergranular Corrosion Resistance of 304 Austenitic Stainless Steel by Thermomechanical Processing for Twin-induced Grain Boundary Engineering [J].
Jin, Wei Zhong ;
Kokawa, Hiroyuki ;
Wang, Zhan Jie ;
Sato, Yutaka S. ;
Hara, Nobuyoshi .
ISIJ INTERNATIONAL, 2010, 50 (03) :476-481
[24]   Dynamic recrystallization behavior of AISI 304 stainless steel [J].
Kim, SI ;
Yoo, YC .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2001, 311 (1-2) :108-113
[25]   Hot -cracking resistivity of dissimilar clads using Inconel 52 and 308L stainless steel on carbon steel [J].
Kim, Yookyung ;
Nam, Hyunbin ;
Lee, Junghun ;
Park, Chulho ;
Moon, Byungrok ;
Nam, Dae-Geun ;
Lee, Seung Hwan ;
Kang, Namhyun .
JOURNAL OF NUCLEAR MATERIALS, 2020, 533
[26]   Effect of grain boundary microstructure on fatigue crack propagation in austenitic stainless steel [J].
Kobayashi, Shigeaki ;
Nakamura, Manabu ;
Tsurekawa, Sadahiro ;
Watanabe, Tadao .
JOURNAL OF MATERIALS SCIENCE, 2011, 46 (12) :4254-4260
[27]   Avoiding abnormal grain growth in thick 7XXX aluminium alloy friction stir welds during T6 post heat treatments [J].
Lezaack, Matthieu B. ;
Simar, Aude .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2021, 807
[28]   Hot Deformation Behavior and Microstructural Evolution of Antibacterial Austenitic Stainless Steel Containing 3.60% Cu [J].
Li, Juan ;
Zhao, Guanghui ;
Ma, Lifeng ;
Chen, Huiqin ;
Li, Huaying ;
Huang, Qingxue ;
Zhang, Wei .
JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2018, 27 (04) :1847-1853
[29]   Hot deformation behavior and microstructural evolution of as-cast 304L antibacterial austenitic stainless steel [J].
Li, Juan ;
Zhao, Guanghui ;
Chen, Huiqin ;
Huang, Qingxue ;
Ma, Lifeng ;
Zhang, Wei .
MATERIALS RESEARCH EXPRESS, 2018, 5 (02)
[30]   Correcting the Stress-Strain Curve in the Stroke-Rate Controlling Forging Process [J].
Li, Y. P. ;
Matsumoto, H. ;
Chiba, A. .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2009, 40A (05) :1203-1209