|
|
Influence of Heat Treatment Process on Microstructure and Corrosion Resistance of Ultrafine Bainite Steel |
FENG Yanpeng1, ZHANG Xian2, WU Kaiming2, YANG Miao1( ) |
1.School of Chemistry, Chemical Engineering and Life Sciences, Wuhan University of Technology, Wuhan 430070, China 2.Hubei Collaborative Innovation Center for Advanced Steels, Wuhan University of Science and Technology, Wuhan 430081, China |
|
|
Abstract A medium carbon steel was heat treated by one-step bainite isothermal, two-step bainite isothermal- and quenching-treatment respectively, and the microstructure, phase distribution, corrosion performance and electrochemical properties of the different heat treated steels were characterized. The results show that compared with the one-step bainite isothermal- and quenching-treated steels, the ultrafine bainite steel after the two-step bainite isothermal treatment has a more uniform structure with smaller proportion of retained austenite. The bainite ferrite phase in the ultrafine bainite steel is selectively dissolved due to the micro-galvanic effect between bainite ferrite and massive retained austenite, resulting in the initiation and propagation of pitting corrosion along the lath direction. However, uniformly distributed film-like retained austenite hinders the further development of corrosion. The electrochemical test results show that the two-step bainite isothermal treated steel has the best corrosion resistance, and the martensitic steel has the worst corrosion resistance.
|
Received: 02 November 2020
|
|
Fund: National Natural Science Foundation of China(51601138);Foundation of the State Key Laboratory of Refractories and Metallurgy(2018QN18) |
Corresponding Authors:
YANG Miao
E-mail: yangmiao@whut.edu.cn
|
About author: YANG Miao, E-mail: yangmiao@whut.edu.cn
|
1 |
Zhang F C, Yang Z N. Development of and perspective on high-performance nanostructured bainitic bearing steel [J]. Engineering, 2019, 5: 319
|
2 |
Malitckii E, Yagodzinskyy Y, Vilaҫa P. Role of retained austenite in hydrogen trapping and hydrogen-assisted fatigue fracture of high-strength steels [J]. Mater. Sci. Eng., 2019, 760A: 68
|
3 |
Caballero F G, Bhadeshia H K D H, Mawella K J A, et al. Very strong low temperature bainite [J]. Mater. Sci. Technol., 2002, 18: 279
|
4 |
Caballero F G, Miller M K, Babu S S, et al. Atomic scale observations of bainite transformation in a high carbon high silicon steel [J]. Acta Mater., 2007, 55: 381
|
5 |
Wu H B, Ju B, Che Y J. Effect of austempering temperature on the microstructure evolution of ultrafine bainite steel [J]. Chin. J. Eng., 2016, 38: 1741
|
|
武会宾, 巨彪, 车英建. 等温温度对超细贝氏体钢组织演变规律的影响 [J]. 工程科学学报, 2016, 38: 1741
|
6 |
Garcia-Mateo C, Caballero F G. Ultra-high-strength bainitic steels [J]. ISIJ Int., 2005, 45: 1736
|
7 |
Garcia-Mateo C, Caballero F G, Bhadeshia H K D H. Development of hard bainite [J]. ISIJ Int., 2003, 43: 1238
|
8 |
Bhadeshia H K D H. High performance bainitic steels [J]. Mater. Sci. Forum, 2005, 500/501: 63
|
9 |
Hase K, Garcia-Mateo C, Bhadeshia H K D H. Bimodal size-distribution of bainite plates [J]. Mater. Sci. Eng., 2006, 438-440A: 145
|
10 |
Wan X L, Hu F, Cheng L, et al. Effect of retained austenite on plasticity and toughness of micro/nano bainitic steel [J]. J. Iron Steel Res., 2019, 31: 305
|
|
万响亮, 胡锋, 成林等. 残留奥氏体对微纳贝氏体钢塑韧性的影响 [J]. 钢铁研究学报, 2019, 31: 305
|
11 |
Kim S J, Park J H, Kim K Y. Effect of microstructure on sulfide scale formation and corrosion behavior of pressure vessel steel in sour environment [J]. Mater. Charact., 2016, 111: 14
|
12 |
Wang Z F, Li P H, Guan Y, et al. The corrosion resistance of ultra-low carbon bainitic steel [J]. Corros. Sci., 2009, 51: 954
|
13 |
Qu S P, Pang X L, Wang Y B, et al. Corrosion behavior of each phase in low carbon microalloyed ferrite-bainite dual-phase steel experiments and modeling [J]. Corros. Sci., 2013, 75: 67
|
14 |
Wei J, Dong J H, Zhou Y T, et al. Influence of the secondary phase on micro galvanic corrosion of low carbon bainitic steel in NaCl solution [J]. Mater. Charact., 2018, 139: 401
|
15 |
Kazum O, Bobby Kannan M, Beladi H, et al. Aqueous corrosion performance of nanostructured bainitic steel [J]. Mater. Des., 2014, 54: 67
|
16 |
Rovere C A D, Santos F S, Silva R, et al. Influence of long-term low-temperature aging on the microhardness and corrosion properties of duplex stainless steel [J]. Corros. Sci., 2013, 68: 84
|
17 |
Hui W J, Tian P, Dong H, et al. Influence of deformation temperature on the microstructure transformation in medium carbon steel [J]. Acta Metall. Sin., 2005, 41: 611
|
|
惠卫军, 田鹏, 董瀚等. 形变温度对中碳钢组织转变的影响 [J]. 金属学报, 2005, 41: 611
|
18 |
Qi Z F. Transformation of supercooling austenite in carbon steel [J]. Trans. Mater. Heat Treat., 2017, 38(4): 1
|
|
戚正风. 碳钢过冷奥氏体的转变 [J]. 材料热处理学报, 2017, 38(4): 1
|
19 |
Wei J, Dong J H, Ke W, et al. Influence of inclusions on early corrosion development of ultra-low carbon bainitic steel in NaCl solution [J]. Corrosion, 2015, 71: 1467
|
20 |
Caballero F G, Miller M K, Garcia-Mateo C. Carbon supersaturation of ferrite in a nanocrystalline bainitic steel [J]. Acta Mater., 2010, 58: 2338
|
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
|
Shared |
|
|
|
|
|
Discussed |
|
|
|
|