|
|
EFFECT OF ONE STEP Q&P PROCESS ON MICRO- STURCTURE AND MECHANICAL PROPERTIES OF A DUAL MARTENSITE STEEL |
Xiaolin LI,Zhaodong WANG( ) |
State Key Laboratory of Rolling and Automation, Northeastern University, Shenyang 110819 |
|
Cite this article:
Xiaolin LI, Zhaodong WANG. EFFECT OF ONE STEP Q&P PROCESS ON MICRO- STURCTURE AND MECHANICAL PROPERTIES OF A DUAL MARTENSITE STEEL. Acta Metall Sin, 2015, 51(5): 537-544.
|
Abstract In accordance with the demand for reduced fuel consumption and CO2 emissions in automobiles, and with the increasing high demand for vehicle lightweight and safety, advanced high- strength steels (AHSS) have received more attentions in recent years. The recent trend for the development of AHSS has been concentrated on the complex microstructure with multiphase. Quenching and partitioning (Q&P) steel with carbon-enriched austenite within martensitic matrix as a competitive candidate of AHSS have been developed widely. It has high strength and good ductility depending on the multiphase microstructure. Therefore, the relationship of the mechanical property and the microstructure of the Q&P steels should be studied in detail. In the present work, the microstructure characterization and mechanical properties of the experimental steel treated by one step Q&P process were investigated, as well as the direct quenching and Q&T processes. The results show that the microstructure of the steel treated by one step Q&P process mainly consists of lath martensite, plate martensite and residual austenite films between martensite laths. With a increase in the holding time, the fraction of the plate martensite firstly increases and then reduces, while that of the retained austenite firstly increases and then becomes constant. The combination of strength and elongation of the steel processed by one step Q&P is much better than the one processed by the other two, that is to say, the former one can possess good strength and ductility at the same time. The product of tensile strength and elongation, the tensile strength and the elongation can achieve 21774.2 MPa·%, 1442 MPa and 15.1%, respectively. Along with the holding time increasing, tensile strength decreases but elongation rises and finally be stable.
|
Received: 15 October 2014
|
Fund: National Natural Science Foundation of China (Nos.51034009 and 51234002) |
[1] | Senuma T. ISIJ Int, 2001; 41: 520 | [2] | Hu J, Du L X, Wang J J. Mater Sci Eng, 2012; A554: 79 | [3] | Guo J, Shang C J, Yang S W, Guo H, Wang X M, He X L. Mater Des, 2009; 30: 129 | [4] | Manohar P A, Chandra T, Killmore C R. ISIJ Int, 1996; 36: 1486 | [5] | Speer J G, Matlock D K, De Cooman B C, Schroth J G. Acta Mater, 2003; 51: 2611 | [6] | Matlock D K, Brautigam V E, Speer J G. Mater Sci Forum, 2003; 426-432: 1089 | [7] | Santofimia M J, Zhao L, Sietsma J. Metall Mater Trans, 2008; 40A: 46 | [8] | Liu H P, Lu X W, Jin X J, Dong H, Shi J. Scr Mater, 2011; 64: 749 | [9] | Li H Y, Lu X W, Li W J, Jin X J. Metall Mater Trans, 2010; 41A: 1284 | [10] | De Moor E, Lacroixs S, Clarke A J, Penning J, Speer J G. Metall Mater Trans, 2008; 39A: 2586 | [11] | Bagliani E P, Santofimia M J, Zhao L, Sietsma J, Anelli E. Mater Sci Eng, 2013; A559: 486 | [12] | Wang C Y. PhD Dissertation. Central Iron & Steel Research Institute, Beijing, 2010 (王存宇. 钢铁研究总院博士学位论文, 北京, 2010) | [13] | Wang C Y, Shi J, Cao W Q, Hui W J. Acta Metall Sin, 2011; 47: 720 (王存宇, 时 捷, 曹文全, 惠卫军. 金属学报, 2011; 47: 720) | [14] | Wang C Y, Shi J, Cao W Q, Dong H. Mater Sci Eng, 2010; A527: 3442 | [15] | Santofimia M J, Petrov R H, Zhao L, Sietsma J. Mater Charact, 2014; 92: 91 | [16] | Santofimia M J, Zhao L, Sietsma J. Metall Mater Trans, 2009; 40A: 46 | [17] | Santofimia M J, Speer J G, Clarke A J, Zhao L, Sietsma J. Acta Mater, 2009; 57: 4548 | [18] | Cui Z Q,Qin Y C. Metallographic and Thermal Treatment. 2nd Ed., Bejing: China Machine Press, 2007: 250, 43 (崔忠圻,覃耀春. 金属学与热处理. 第二版, 北京: 机械工业出版业, 2007: 250, 43) | [19] | Sun J, Yun H, Wang S Y. Mater Sci Eng, 2014; A596: 89 | [20] | Yan S, Liu X H, Liu W J. Mater Sci Eng, 2015; A620: 58 | [21] | Hana J, Bohuslav M, Marin F W, Daniel K. J Alloys Compd, 2014; 615: 163 | [22] | Li Z, Wu D. ISIJ Int, 2006; 46: 121 | [23] | Sugimoto K I, Usui N, Kobayashi M, Hashimota S I. ISIJ Int, 1992; 32: 1311 | [24] | Kung C Y, Rayment J J. Mater Trans, 1982; 13A: 328 | [25] | Pan J S,Tong J M,Tian M B. Material Science Foundation. Beijing: Tsinghua University Press, 2011: 462 (潘金生,仝健民,田民波. 材料科学基础. 北京: 清华大学出版社, 2011: 462) | [26] | Santofimia M J, Zhao L, Sietsma J. Metall Mater Trans, 2009; 40A: 46 | [27] | Zhong N, Wang X, Rong Y. J Mater Sci Technol, 2006; 22: 751 | [28] | Guo K X,Ye H Q,Wu Y K. Application of Electron Diffraction Pattern in Crystallography. Beijing: Science Press, 1983: 309 (郭可信,叶恒强,吴玉琨. 电子衍射图在晶体学中的应用. 北京: 科学出版社, 1983: 309) | [29] | Yan S, Liu X H, Liu W J. Acta Metall Sin, 2013; 49: 917 (闫 述, 刘相华, 刘伟杰. 金属学报, 2013; 49: 917) |
|
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
|
Shared |
|
|
|
|
|
Discussed |
|
|
|
|