STUDY OF SOLIDIFICATION THERMAL PARAMETERS OF 430 FERRITE STAINLESS STEEL BASED ON 3D-CAFE METHOD

  • PANG Ruipeng ,
  • WANG Fuming ,
  • ZHANG Guoqing ,
  • LI Changrong
Expand
  • 1) State Key Laboratory of Advanced Metallurgy, University of Science and Technology Beijing, Beijing 100083
    2) School of Metallurgical and Ecological Engineering, University of Science and Technology Beijing, Beijing 100083
    3) School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083

Received date: 2013-05-28

  Revised date: 2013-07-25

  Online published: 2013-10-11

Abstract

The dendrite tip growth kinetic coefficients and Gauss distribution parameters for 3D-CAFE simulation are determined according to the main compositions of 430 ferrite stainless steel and the macrostructure forming under the experimental condition of slow cooling. Based on the repeated computation with different heat transfer coefficients, the heat transfer coefficient under slow condition is determined when the solidification structure by above simulation computation is basically the same as the experimental one under slow cooling. The temperature fields and flow fields of 430 ferrite stainless steel during the solidification process under the conditions of slow cooling, air cooling and water cooling were analyzed by use of 3D-CAFE method, respectively. The results show that the temperature field of solidification process under slow cooling condition is the most uniform and the solid-liquid region is the widest, followed by air cooling condition, while the temperature field under water cooling is quite non-uniform and the solid-liquid region is the narrowest. The maximum solidification rates are 2.3 mm/s with slow cooling, 3.0 mm/s with air cooling and 3.3 mm/s with water cooling, respectively, which are obtained in the center of the castings. The maximum flow rate is obtained in the center of casting with the value of 8.9 mm/s under slow cooling condition, and the maximum flow rate is 9.8 mm/s near the side wall under air cooling condition, while the maximum flow rate is 4.6 mm/s at the position with the 3/5 distance from the side wall under water cooling condition. The solidification structure of casting is composed of almost all equiaxed grains under slow cooling condition, and only a few equiaxed grains exist in the centre of casting under air cooling condition, while the solidification structure of casting consists of coarse columnar grains under water cooling condition.

Cite this article

PANG Ruipeng , WANG Fuming , ZHANG Guoqing , LI Changrong . STUDY OF SOLIDIFICATION THERMAL PARAMETERS OF 430 FERRITE STAINLESS STEEL BASED ON 3D-CAFE METHOD[J]. Acta Metall Sin, 2013 , 49(10) : 1234 -1242 . DOI: 10.3724/SP.J.1037.2013.00288

References

[1] Hamada J, Matsumoto Y, Fudanoki F. ISIJ Int, 2003; 43: 1989

[2] Chang L Z, Shi X F, Yang H S, Li Z B. J Iron Steel Res Int, 2009; 16: 7
[3] Tsuji N, Tsuzaki K, Maki T. ISIJ Int, 1994; 34: 1008
[4] Yoshihiro Y, Yoshihiro O, Yasushi K, Osamu F. J Rev, 2003; 24: 483
[5] Hyung J S, Joong K A, Soo H P, Dong N L. Acta Mater, 2003; 51: 4693
[6] Huh M Y, Engler O. Mater Sci Eng, 2001; A308: 74
[7] Shin Y H, Hong C P. ISIJ Int, 2002; 42: 359
[8] Chang S R, Kim J M, Hong C P. ISIJ Int, 2001; 41: 738
[9] Gandin C A, Rappaz M. Acta Mater, 1997; 45: 2187
[10] Rappaz M, Gandin C A. Acta Mater Sin, 1993; 41: 345
[11] Couturier G, Rappaz M. Model Simul Mater Sci Eng, 2006; 14: 253
[12] David R J, Haruyuki I, Shinji M, Yuji O, Takamitsu Y. Acta Mater, 2006; 54: 1077
[13] Zhu M F, Hong C P. ISIJ Int, 2001; 41: 436
[14] Kang X H, Du Q, Li D Z, Li Y Y. Acta Metall Sin, 2004; 5: 452
(康秀红, 杜强, 李殿中, 李依依. 金属学报, 2004; 5: 452)
[15] Ignaszak Z, Hajkowski M, Hajkowski J. Mater Sci, 2006; 12: 124
[16] Gildas G, Charles-Andre G, Herve C. ISIJ Int, 2006; 46: 880
[17] Zhu M F, Kim J M, Hong C P. ISIJ Int, 2001; 41: 992
[18] Kattner U R. JOM, 1997; 49: 14
[19] Saunders N, Miodownik A P. Calculation of Phase Diagrams: A Comprehensive Guide.London: Oxford University Press, 1998: 33
[20] Hwangh J D, Lin J, Hwang W S. ISIJ Int, 1995; 35: 170
[21] Wang J L, Wang F M, Li C R, Zhang J M. ISIJ Int, 2010; 50: 222
[22] Zuo Y B, Cui J Z, Zhao Z H, Zhu Q F, Qu F, Wang X J. Chin J Rare Met, 2010; 32: 325
(左玉波, 崔建忠, 赵志浩, 朱庆丰, 屈福, 王向杰. 稀有金属, 2008; 32: 325)
[23] McFadden S, Browne D J, Gandin C A. Metall Mater Trans, 2009; 40A: 662
[24] Poole W J, Weinberg F. Metall Mater Trans, 1998; 29A: 885
[25] Ma Y P. Metal Solidification Theory and Technique. Beijing: Metallurgical Industry Press, 2008: 76

(马幼平. 金属凝固理论与技术. 北京: 冶金工业出版社, 2008: 76)

Outlines

/