期刊文献+

A Coupled Thermodynamic Model for Prediction of Inclusions Precipitation during Solidification of Heat-resistant Steel Containing Cerium 被引量:4

A Coupled Thermodynamic Model for Prediction of Inclusions Precipitation during Solidification of Heat-resistant Steel Containing Cerium
原文传递
导出
摘要 A coupled thermodynamic model of inclusions precipitation both in liquid and solid phase and microseg- regation of solute elements during solidification of heat-resistant steel containing cerium was established. Then the model was validated by the SEM analysis of the industrial products. The type and amount of inclusions in solidifica- tion structure of 253MA heat-resistant steel were predicted by the model, and the valuable results for the inclusions controlling in 253MA steel were obtained. When the cerium addition increases, the types of inclusions transform from SiO2 and MnS to Ce2 O3 and Ce2O2 S in 253MA steel and the precipitation temperature of SiO2 and MnS decrea- ses. The inclusions CeS and CeN convert to Ce2 O3 and Ce2 O2 S as the oxygen content increases and Ce2 O3 and CeN convert to Ce2 O2 S, Ce3 S4, and MnS as the sulfur content increases. The formation temperature of SiO2 increases when the oxygen content increases and the MnS precipitation temperature increases when the sulfur content increa ses. There is only a small quantity of inclusions containing cerium in 253MA steel with high cleanliness, i. e. , low oxygen and sulfur contents. By contrast, a mass of SiO2 , MnS and Ce2 O2 S are formed in steel when the oxygen and sulfur contents are high enough. The condition that MnS precipitates in 253MA steel is 1.2wEo[O] +W[s]〉0. 01% and SiO2 precipitates when 2w[O] +wrs[S]〉0. 017% (W[S]0. 005%) and w[O]〉0. 006% (w[S]〉0. 005%). A coupled thermodynamic model of inclusions precipitation both in liquid and solid phase and microseg- regation of solute elements during solidification of heat-resistant steel containing cerium was established. Then the model was validated by the SEM analysis of the industrial products. The type and amount of inclusions in solidifica- tion structure of 253MA heat-resistant steel were predicted by the model, and the valuable results for the inclusions controlling in 253MA steel were obtained. When the cerium addition increases, the types of inclusions transform from SiO2 and MnS to Ce2 O3 and Ce2O2 S in 253MA steel and the precipitation temperature of SiO2 and MnS decrea- ses. The inclusions CeS and CeN convert to Ce2 O3 and Ce2 O2 S as the oxygen content increases and Ce2 O3 and CeN convert to Ce2 O2 S, Ce3 S4, and MnS as the sulfur content increases. The formation temperature of SiO2 increases when the oxygen content increases and the MnS precipitation temperature increases when the sulfur content increa ses. There is only a small quantity of inclusions containing cerium in 253MA steel with high cleanliness, i. e. , low oxygen and sulfur contents. By contrast, a mass of SiO2 , MnS and Ce2 O2 S are formed in steel when the oxygen and sulfur contents are high enough. The condition that MnS precipitates in 253MA steel is 1.2wEo[O] +W[s]〉0. 01% and SiO2 precipitates when 2w[O] +wrs[S]〉0. 017% (W[S]0. 005%) and w[O]〉0. 006% (w[S]〉0. 005%).
出处 《Journal of Iron and Steel Research(International)》 SCIE EI CAS CSCD 2015年第6期457-463,共7页 钢铁研究学报(英文版)
基金 Sponsored by National Key Basic Research Program of China(2012CB626812) National Natural Science Foundation of China(51104039) Program for New Century Excellent Talents in University of Ministry of Education of China(NCET-11-0077)
关键词 heat-resistant steel rare earth steel INCLUSION microsegregationl solidification thermodynamic model heat-resistant steel rare earth steel inclusion microsegregationl solidification thermodynamic model
  • 相关文献

参考文献24

  • 1Y. K. Yao , M. W. Zhu. D. Y. Wang. C.J. Liu, M. F.Jiang. Chinese Rare Earth 25 (2004) No.5. 17-19.
  • 2S. C. Zhao. F. Y. Shen , Q. Y. Han. G. L. Shao , Iron and Steel 17 (1982) No.3. 24-31.
  • 3Z. S. Yu. W. Z. Zhao. Y. F. Xie. Q. H. Yu. Iron and Steel 19 (1984) No.3. 18-24.
  • 4N. Kojola. S. Ekerot , M. Andersson. P. G.J onsson , lronmak. Steelmak. 38 (2011) 1-11.
  • 5I. H.J u ng , S. A Dect erov , A. D. Pelton, Metall. Mater. Trans. B 35 (2004) 493-507.
  • 6S. Choudhary, A. Ghosh. ISIJ Int. 49 (2009) 1819-1827.
  • 7Z. Z. Liu. K.J. Gu , K. K. Cai. ISIJ Int. 42 (2002) 950-957.
  • 8H. Q. Zhang. S. B. Zheng , Q. Zheng , Z. L. Liu. G. C.Jiang. Acta Me tall. Sin. 42 (2006) 745-750.
  • 9c.J. Liu , L. Fang. Y. S Wang, M. F.Jiang,J. Northeast. Univ. Nat. Sci. 28 (2007) 1410-1413.
  • 10R.J. Fruchan , Metall. Mater. Trans. B 10 (1979) 143-148.

同被引文献70

引证文献4

二级引证文献14

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部