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EFFECT OF TEMPERING TIME ON MICROSTRUC- TURE AND MECHANICAL PROPERTIES OF HIGH Ti MICROALLOYED QUENCHED MARTENSITIC STEEL |
Ke ZHANG1,2,Xinjun SUN2( ),Qilong YONG2,Zhaodong LI2,Gengwei YANG3,Yuanmei LI1,2 |
1 School of Materials Science and Engineering, Kunming University of Science and Technology, Kunming 650093
2 Institute of Structural Steels, Central Iron and Steel Research Institute, Beijing 100081
3 School of Materials and Metallurgy, Wuhan University of Science and Technology, Wuhan 430081 |
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Cite this article:
Ke ZHANG, Xinjun SUN, Qilong YONG, Zhaodong LI, Gengwei YANG, Yuanmei LI. EFFECT OF TEMPERING TIME ON MICROSTRUC- TURE AND MECHANICAL PROPERTIES OF HIGH Ti MICROALLOYED QUENCHED MARTENSITIC STEEL. Acta Metall Sin, 2015, 51(5): 553-560.
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Abstract With the development of Ti microalloying technology, the application and theory research of Ti in microalloyed steels are becoming more deeply and widely. However, the effect of tempering time on the microstructure and mechanical properties of high Ti microalloyed quenched martensitic steel has been rarely touched upon, meanwhile, it has long been inconclusive whether precipitated phases coarsening or the recovery and softening of martensitic matrix is the dominant role resulting in the decrease of hardness along with long time tempering of microalloyed steel. In this work, the effect of tempering time on the microstructure and mechanical properties of high Ti microalloyed quenched steel was systemactically investigated by TEM, XRD and Vickers-hardness test, and the interaction between precipitation hardening and microstructural softening of the high Ti microalloyed steel was also studied. The results indicate that the hardness increases for Ti microalloyed steel with tempering time 10~300 s, which is attributed to the fact that the precipitation hardening by nano-sized TiC particles is greater than the recovery and softening of matrix. With the tempering time from 300 s to 10 h, nano-sized TiC particles precipitate more and more and the mass fraction of TiC with the size less than 5 nm increases, owning to the precipitation hardening produced by tiny TiC which offsets the hardness decrease due to the gradual softening with recovery of matrix, and therefore, the hardness can keep a long platform; in addition, with the tempering time 10~20 h, the hardness decreases significantly and the deacreasing rate of hardening for steel with Ti microalloying is higher than that for steel without Ti microalloying. The average particle size of TiC increases from 2.76 nm at 10 h to 3.15 nm at 20 h. Calculation results show that the decrease of hardness caused by coarsening of TiC is 11.94 HV, while caused by recovery of matrix is 24.56 HV. It is shown that the recovery of matrix is the dominating factor for reduction in hardness, but coarsening of tiny TiC speeds the decrease of hardness and is also an important factor resulting in the decrease of hardness.
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Received: 25 August 2014
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Fund: National Natural Science Foundation of China (No.51201036) and National Science and Technology Pillar Program (No.2013BAE07B05) |
[1] | Spcich G R, Leslie W C. Metall Trans, 1972; 3A: 1043 | [2] | Engel E H. Trans Am Soc Met, 1939; 27: 1 | [3] | Hollomon J H, Jaffe L D. Trans AIME, 1945; 162: 223 | [4] | Murphy S, Woodhead J H. Metall Trans, 1972; 3: 727 | [5] | Guo C S. Acta Metall Sin, 1999; 35: 865 (郭从盛. 金属学报, 1999; 35: 865) | [6] | Zhang Z P, Qi Y H, Delagnes D, Bernhart G. Trans Mater Heat Treat, 2004; 25(1): 41 (张占平, 齐育红, Delagnes D, Bernhart G. 材料热处理学报, 2004; 25(1): 41) | [7] | Zou Q H. Heat Treat Met, 1994; (3): 41 (邹庆化. 金属热处理, 1994; (3): 41) | [8] | Grange R A, Hribal C R, Porter L R. Metall Trans, 1977; 8A: 1775 | [9] | Caron R N, Krauss G. Metall Trans, 1972; 3A: 2381 | [10] | Takaki S, Iizuka S, Tomimura K, Tokunage Y. Mater Trans JIM, 1991; 32: 207 | [11] | Zhong P, Ling B, Gu B Z. Spec Steel, 1996; 17(4): 23 (钟 平, 凌 斌, 古宝珠. 特殊钢, 1996; 17(4): 23) | [12] | Liu Q D, Liu W Q, Peng J C. Trans Mater Heat Treat, 2008; 29(4): 118 (刘庆东, 刘文庆, 彭剑超. 材料热处理学报, 2008; 29(4): 118) | [13] | Liu Q D, Liu W Q, Wang Z M, Zhou B X. Acta Metall Sin, 2009; 45: 1281 (刘庆东, 刘文庆, 王泽民, 周邦新. 金属学报, 2009; 45: 1281) | [14] | Liu Q D, Peng J C, Liu W Q, Zhou B X. Acta Metall Sin, 2009; 45: 1288 (刘庆东, 彭剑超, 刘文庆, 周邦新. 金属学报, 2009; 45: 1288) | [15] | Liu Q D, Chu Y L, Peng J C, Liu W Q, Zhou B X. Acta Metall Sin, 2009; 45: 1297 (刘庆东, 褚于良, 彭剑超, 刘文庆, 周邦新. 金属学报, 2009; 45: 1297) | [16] | Xu F Y, Bai B Z, Fang H S. Heat Treat Met, 2007; 32(12): 29 (许峰云, 白秉哲, 方鸿生. 金属热处理, 2007; 32(12): 29) | [17] | Zhou J L, Huang G, Xiang S, Pan C G, Lai C M, Hu T G. Spec Steel, 2014; 35(3): 49 (周家林, 黄 高, 向 上, 潘成钢, 赖春明, 胡唐国. 特殊钢, 2014; 35(3): 49) | [18] | Wang Z Q. PhD Dissertation, Tsinghua University, Beijing, 2013 (王振强. 清华大学博士学位论文, 北京, 2013) | [19] | Wang M, Li L F, Sun Z Q, Yang W Y. Acta Metall Sin, 2007; 43: 1009 (王 猛, 李龙飞, 孙祖庆, 杨王玥. 金属学报, 2007; 43: 1009) | [20] | Tsuchiyama T, Miyamoto Y, Takaki S. ISI Int, 2001; 41: 1047 | [21] | Tokizane M, Matsumura N, Tsuzaki K, Maki T, Tamura I. Metall Trans, 1982; 13A: 1379 | [22] | Maki T, Tamura I. Trans ISIJ, 1981; 67: 852 | [23] | Yong Q L. Secondary Phases in Steels. Beijing: Metallurgical Industry Press, 2006: 415 (雍岐龙. 钢铁材料中的第二相. 北京: 冶金工业出版社, 2006: 415) | [24] | Funakawa Y, Shiozaki T, Tomita K, Yamamoto T, Maeda E. ISIJ Int, 2004; 44: 1945 | [25] | Pavlina E J, Van Type C J. J Mater Eng Perform, 2008; 17: 888 | [26] | Kesternich W. Philos Mag, 1985; 52: 533 |
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