Transformations During Intercritical Annealing and Their Implications for Microstructure and Mechanical Properties of Medium Mn Transformation-Induced Plasticity Steel in Continuous Annealing Line

被引:0
作者
Wei Ding
Jing-chao Du
Yan Li
机构
[1] Inner Mongolia University of Science and Technology,School of Material and Metallurgy
[2] Inner Mongolia University of Science and Technology,Bayan Obo Multimetallic Resource Comprehensive Utilization Key Lab
来源
Journal of Materials Engineering and Performance | 2020年 / 29卷
关键词
medium Mn TRIP steel; mechanical properties; microstructure; phase transformation; trip effect;
D O I
暂无
中图分类号
学科分类号
摘要
Phase transformation during intercritical annealing (IA) and the relationship between microstructure and mechanical properties of the intercritical annealed 0.2C-5MnTRIP steels were investigated using a combined method of dilatometry, scanning electron microscope, transmission electron microscope, x-ray diffraction, and tensile testing. With the increase in IA temperature and holding time, the fraction of reversed austenite increases while the chemical stability of reversed austenite decreases, leading to the transformation of reversed austenite to martensite in the cooling stage. IA temperature is found to have a greater influence on the stability of austenite than IA time. The microstructures mainly comprised of ferrite and retained austenite, with granular carbide and martensite also observed in some specimens. The carbide precipitates formed during hot rolling remain after cold rolling and annealing process and gradually dissolve at higher IA temperature or with longer IA time. The optimal IA parameter, i.e., 650 °C for 15 min, contributes to a good product of tensile strength and elongation (997 MPa × 29.25%) due to an excellent TRIP effect. The present work gives a clear insight in controlling the mechanical properties of medium Mn TRIP steel in the continuous annealing line by a reasonable design of the IA process.
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页码:23 / 31
页数:8
相关论文
共 108 条
[1]  
Cao WQ(2012)Microstructures and Mechanical Properties of the Third Generation Automobile Steels Fabricated by Art-Annealing Sci. China Technol. Sci. 55 1814-1822
[2]  
Chang W(2013)Development of 3rd Generation AHSS with Medium Mn Content Alloying Compositions Mater. Sci. Eng. A 564 501-508
[3]  
Wang CY(2002)Phase Transformation and Mechanical Properties of Si-Free CMnAl Transformation-Induced Plasticity-Aided Steel Metall. Mater. Trans. A 33 2573-2580
[4]  
Jie S(2014)Effect of Carbon on the Plastic Strain Ratio of Low Carbon Dual-Phase Steels Met. Mater. Int. 20 49-53
[5]  
Wang MQ(2011)Influence of Isothermal Bainite Transformation Time on Microstructure and Mechanical Properties of Hot-Dip Galvanized TRIP Steel J. Mater. Eng. Perform. 20 997-1002
[6]  
Han D(2000)High Strength Fe–Mn–(Al, Si) TRIP/TWIP Steels Development—Properties—Application Int. J. Plast 16 1391-1409
[7]  
Weng YQ(2012)Microstructural Evolution during Plastic Deformation of Twinning-Induced Plasticity Steels Scr. Mater. 66 1002-1006
[8]  
Aydin H(2014)Strain Hardening During Hot Compression Through Planar Dislocation and Twin-Like Structure in a Low-Density High-Mn Steel J. Mater. Eng. Perform. 23 3567-3576
[9]  
Essadiqi E(2015)Current Opinion in Medium Manganese Steel Mater. Sci. Technol. 31 843-856
[10]  
Jung I-H(1972)Ultrafine-Grained Microstructures and Mechanical Properties of Alloy Steels Metall. Trans. 3 905-912