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Grain refinement and formation of ultrafine-grained microstructure in a low-carbon steel under electropulsing

Published online by Cambridge University Press:  31 January 2011

Yizhou Zhou
Affiliation:
Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 72 Wenhua Road, Shenyang 110016, Peoples Republic of China
Wei Zhang
Affiliation:
Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 72 Wenhua Road, Shenyang 110016, Peoples Republic of China
Baoquan Wang
Affiliation:
Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 72 Wenhua Road, Shenyang 110016, Peoples Republic of China
Guanhu He
Affiliation:
Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 72 Wenhua Road, Shenyang 110016, Peoples Republic of China
Jingdong Guo*
Affiliation:
Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 72 Wenhua Road, Shenyang 110016, Peoples Republic of China
*
a)Address all correspondence to this author.jdguo@imr.ac.cn
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Abstract

High current electropulsing was applied to a low-carbon steel in the solid state. The relationship between grain size and experimental conditions was revealed. It was found that the ultrafine-grained (UFG) microstructure could be formed when electric current density, heating rate, and cooling rate all were high. The UFG samples prepared by applying electropulsing were free of porosity and contamination, and had no large microstrain. Also, their tensile strength was dramatically enhanced over that of their coarse-grained counterparts, without a decrease in ductility. The mechanism for grain refinement and formation of the UFG microstructure was discussed. It is proposed that the effect of a decrease in thermodynamic barrier and enhancement of nucleation rate in a current-carrying system cannot be neglected.

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Articles
Copyright
Copyright © Materials Research Society 2002

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References

1.Gleiter, H., Prog. Mater. Sci. 33, 231 (1989).CrossRefGoogle Scholar
2.Lu, K., Mater. Sci. Eng. R16, 161 (1996).CrossRefGoogle Scholar
3.Suryanarayana, C., Int. Mater. Rev. 40, 41 (1995).CrossRefGoogle Scholar
4.Zhou, Y.Z., Guo, J.D., Shan, Y.Y., Wang, B.Q., and He, G.H., Chin. J. Mater. Res. 16, 243 (2002).Google Scholar
5.Zhang, W., Sui, M.L., Hu, K.Y., Li, D.X., Guo, X.N., He, G.H., and Zhou, B.L., J. Mater. Res. 15, 2065 (2000).CrossRefGoogle Scholar
6.Wever, V.H. and Seith, W., Z. Elektrochem. 59, 942 (1955).Google Scholar
7.Bosvieux, C. and Friedel, J., J. Phys. Chem. Solids 23, 123 (1962).CrossRefGoogle Scholar
8.Ho, P.S. and Kwok, T., Rep. Prog. Phys. 52, 301 (1989).CrossRefGoogle Scholar
9.Sprecher, A.F., Mannan, S.L., and Conrad, H., Acta Metall. 34, 1145 (1986).CrossRefGoogle Scholar
10.Okazaki, K., Kagawa, M., and Conrad, H., Scripta Metall. 12, 1063 (1978).CrossRefGoogle Scholar
11.Conrad, H. and Sprecher, A.F., in Dislocations in Solids, edited by Nabarro, F.R.N. (Elsevier Science Publishers, Amsterdam, The Netherlands, 1989), p. 497.Google Scholar
12.Misra, A.K., Metall. Trans. 16A, 1354 (1985).CrossRefGoogle Scholar
13.Barnak, J.P., Sprecher, A.F., and Conrad, H., Scripta Metall. 32, 879 (1995).CrossRefGoogle Scholar
14.Li, J.M., Li, S.L., Li, J., and Liu, H.T., Scripta Metall. 31, 1691 (1994).Google Scholar
15.Lai, Z.H., Conrad, H., Chao, Y.S., Wang, S.Q., and Sun, J., Scripta Metall. 23, 305 (1989).CrossRefGoogle Scholar
16.Mizubayashi, H. and Okuda, S., Phys. Rev. B 40, 8057 (1989).CrossRefGoogle Scholar
17.Takemoto, R., Nagata, M., and Mizubayashi, H., Acta Mater. 44, 2787 (1996).CrossRefGoogle Scholar
18.Zhou, Y.Z., Qin, R.S., Xiao, S.H., He, G.H., and Zhou, B.L., J. Mater. Res. 15, 1056 (2000).CrossRefGoogle Scholar
19.Zhou, Y.Z., Zeng, Y., He, G.H., and Zhou, B.L., J. Mater. Res. 16, 17 (2001).Google Scholar
20.Huntington, H.B. and Drone, A.R., J. Phys. Chem. Solids 20, 76 (1961).CrossRefGoogle Scholar
21.Nabarro, F.R.N., Theory of Crystal Dislocations (Clarendon Press, Oxford, United Kingdom, 1967), p. 529.Google Scholar
22.Dolinsky, Y. and Elperin, T., J. Appl. Phys. 73, 5283 (1993).CrossRefGoogle Scholar
23.Dolinsky, Y. and Elperin, T., Phys. Rev. B 47, 14778 (1993).CrossRefGoogle Scholar
24.Dolinsky, Y. and Elperin, T., Phys. Rev. B 52, 54 (1994).Google Scholar
25.Qin, R.S. and Zhou, B.L., Int. J. Non-Equilib. Proc. 11, 77 (1998).Google Scholar
26.Qin, R.S. and Zhou, B.L., Chin. J. Mater. Res. 11, 69 (1997).Google Scholar
27.Qin, R.S., Yan, H.C., He, G.H., and Zhou, B.L., Chin. J. Mater. Res. 9, 219 (1995).Google Scholar
28.Zhao, M.C., Shan, Y.Y., Qu, J.B., Yang, K., Zheng, L., and Gao, S., Acta Metall. Sinica 37, 179 (2001).Google Scholar
29.Zhou, Y.Z., Zhang, W., Sui, M.L., Li, D.L., He, G.H., and Guo, J.D., J. Mater. Res. 17, 921 (2002).CrossRefGoogle Scholar
30.Metals Handbook, 10th ed., edited by ASM International Handbook Committee (ASM International, Metals Park, OH, 1990), p. 1124.Google Scholar
31.Porter, D.A. and Easterling, K.E., Phase Transformation in Metals and Alloys (Van Nostrand Reinhold Company, Berkshire, United Kingdom, 1984), pp. 186260.Google Scholar