Effect of lower bainite/martensite/retained austenite triplex microstructure on the mechanical properties of a low-carbon steel with quenching and partitioning process

被引:0
作者
Wan-song Li
Hong-ye Gao
Zhong-yi Li
Hideharu Nakashima
Satoshi Hata
Wen-huai Tian
机构
[1] University of Science and Technology Beijing,School of Materials Science and Engineering
[2] Kyushu University,Interdisciplinary Graduate School of Engineering Sciences
来源
International Journal of Minerals, Metallurgy, and Materials | 2016年 / 23卷
关键词
low-carbon steel; quenching; partitioning; retained austenite; microstructure; mechanical properties;
D O I
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中图分类号
学科分类号
摘要
We present a study concerning Fe–0.176C–1.31Si–1.58Mn–0.26Al–0.3Cr (wt%) steel subjected to a quenching and partitioning (Q&P) process. The results of scanning electron microscopy, transmission electron microscopy, X-ray diffraction, and tensile tests demonstrate that the microstructures primarily consist of lath martensite, retained austenite, lower bainite (LB), and a small amount of tempered martensite; moreover, few twin austenite grains were observed. In the microstructure, three types of retained austenite with different sizes and morphologies were observed: blocky retained austenite (~300 nm in width), film-like retained austenite (80–120 nm in width), and ultra- fine film-like retained austenite (30–40 nm in width). Because of the effect of the retained austenite/martensite/LB triplex microstructure, the specimens prepared using different quenching temperatures exhibit high ultimate tensile strength and yield strength. Furthermore, the strength effect of LB can partially counteract the decreasing strength effect of martensite. The formation of LB substantially reduces the amount of retained austenite. Analyses of the retained austenite and the amount of blocky retained austenite indicated that the carbon content is critical to the total elongation of Q&P steel.
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页码:303 / 313
页数:10
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共 109 条
[1]  
Malakondaiah G.(1997)Ultra-high-strength low-alloy steels with enhanced fracture toughness Prog. Mater. Sci. 42 209-undefined
[2]  
Srinivas M.(2003)Carbon partitioning into austenite after martensite transformation Acta Mater. 51 2611-undefined
[3]  
Rama Rao P.(2005)The “quenching and partitioning” process: background and recent progress Mater. Res. 8 417-undefined
[4]  
Speer J.(2014)Influence of silicon on the microstructures, mechanical properties and stretchflangeability of dual phase steels Int. J. Miner. Metall. Mater. 21 755-undefined
[5]  
Matlock D.K.(2004)A study of microstructure, transformation mechanisms and correlation between microstructure and mechanical properties of a low alloyed TRIP steel Acta Metall. 52 2765-undefined
[6]  
De Cooman B.C.(2015)Influence of original microstructure on the transformation behavior and mechanical properties of ultra-highstrength TRIP-aided steel Int. J. Miner. Metall. Mater. 22 262-undefined
[7]  
Schroth J.G.(2013)Design of a low-alloy high-strength and high-toughness martensitic steel Int. J. Miner. Metall. Mater. 20 733-undefined
[8]  
Speer J.G.(2008)Characterization of the microstructure obtained by the quenching and partitioning process in a low-carbon steel Mater. Charact. 59 1758-undefined
[9]  
Rizzo Assunção F.C.(2013)Deformation temperature dependence of mechanical properties and microstructures for a novel quenching-partitioning-tempering steel J. Mater. Sci. Technol. 29 451-undefined
[10]  
Matlock D.K.(2010)Bainitic transformation during the two-step quenching and partitioning process in a medium carbon steel containing silicon Mater. Sci. Eng. A 527 6255-undefined