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微合金钢凝固前沿脆性区溶质的偏析特性 被引量:1

Characteristics of Solute Segregation on Brittle Zone at Solidifying Front of Microalloy Steel
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摘要 针对目前微合金钢凝固过程中产生大量裂纹缺陷的现状。以B-F偏析模型为基础对微合金钢凝固过程进行了理论分析,并结合Gleeble-1500热模拟试验,系统研究了SAPH440微合金钢凝固前沿脆性区的溶质偏析及裂纹敏感性。结果表明:微合金钢凝固过程中,固相率在0.75~1.00之间时,C、Mn元素偏析较轻,S、P、Ti元素偏析严重,Mn对S偏析有抑制作用,Mn的质量分数增加到1.2%时,S的偏析度降低至20.7;对凝固脆性区的影响程度顺序为Mn>S>C>P>Ti,S的质量分数由0.002%增加至0.02%,凝固脆性区由25K扩大至33K;Mn的质量分数从0.2%增大到1.6%时,裂纹敏感区间由15K扩大至38K。同时Gleeble-1500热模拟试验证实钢脆化的原因与试样的凝固组织无直接关系。 Based on numerous cracks in continuous cast billets during solidification,the crack susceptibility and solute segregation was investigated by theoretical calculation and thermal simulation experiment.The results show that the solid volume fraction of microalloy steel between 0.75 and 1.00,the segregation degree of elements C,Mn is lower than S,P,Ti.While the S content raises to 1.2%,the segregation degree of element S decreases to 20.7;the influence degree of brittle zone is MnSCPTi,the brittle zone temperature enlarges from 25 K to 33 K,15 K to 38 K with the content of S,Mn increases from 0.002% to 0.02%,0.2% to 1.6%,respectively.Meanwhile,steel embitterment has no direct relation with solidification structure was confirmed by thermal simulation experiment.
出处 《钢铁》 CAS CSCD 北大核心 2012年第12期33-38,共6页 Iron and Steel
基金 国家自然科学基金资助项目(51274032)
关键词 连铸 微合金钢 凝固前沿 溶质偏析 脆性区 continuous casting microalloy steel solidifying front solute segregation brittle zone
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参考文献7

  • 1Thomas B G, Brimacombe J K, Samarasekera I V. The For- mation of Panel Cracks in Steel Ingots: A State-obthe-Art Re- view[J]. ISS Transactions, 1986, 7(10): 7.
  • 2Kim K, Han H N, Yeo T, et al. Analysis of Surface and In- ternal Cracks in Continuous Cast Beam Blank[J]. Ironmaking and Steelmaking, 1997, 24(3): 249.
  • 3蔡兆镇,朱苗勇.溶质偏析对连铸坯凝固前沿裂纹敏感性影响的研究[J].铸造技术,2009,30(11):1396-1401. 被引量:11
  • 4Brody H D, Flemings M C. Solute Redistribution During Den- dritic Solidification[J]. AIME, 1966, 236: 615.
  • 5陈家祥.炼钢常用数据图表手册[M].北京:冶金工业出版社,1984.1-25.
  • 6刘洋,王新华,王文军,姜中行.低碳纯净钢连铸坯凝固前沿元素微观偏析模型的研究[J].铸造技术,2011,32(1):49-54. 被引量:7
  • 7Yamanaka A, Yakima K, Okamura K, et al. Critical Strain for Internal Crack Formation in Continuous Casting[J]. Iron- making and Steelmaking. 1995, 22(6): 508.

二级参考文献25

  • 1Thomas B G, Brimacombe J K, and Samarasekera I V. The Formation of Panel Cracks in Steel Ingots: A State- of-the-art Review[J]. ISS Transactions, 1986, (7) : 7-20.
  • 2Kim K, Han H N, Yeo T, et al. Analysis of Surface and Internal Cracks in Continuous Cast Beam Blank [J]. Ironmaking and Steelmaking, 1997,24(3) : 249-256.
  • 3Ueshima Y, Mizoguehi S, Matsumiya T, et al. Analysis of Solute Distribution in Dendrites of Carbon Steel with δ/γ Transformation during Solidification [J]. Metallurgical Transactions, 1986,17B(4) : 945-859.
  • 4E L-Bealy M and Thomas B G. Prediction of dendrite arm spacing for low alloy steel casting processes [J]. Metallurgical Transactions, 1996,27B(4) : 689-693.
  • 5Suzuki M, Yamaoka Y. Influence of Carbon Content on Solidifying Shell Growth of Carbon Steels at the Initial Stage of Solidification[J]. Materials Transactions, 2003,44(5):836-844.
  • 6Kawawa T. Tekko-Binran (Handbook for Steel)[M]. Tokyo, ed. by ISIJ, 3rd ed 1981.
  • 7Saeki T, Ooguchi S, Mizoguchi S, et al. Effect of Irregularity in Solidified Shell Thickness on Longitudinal Surface Cracks in CC Slabs[J]. Tetsu-to-Hagane, 1982, 68(13):1 173-1 781.
  • 8Kim K, Yeo T, Oh K H, et al. Effect of Carbon and Sulfur in Continuously Cast Strand on Longitudinal Surface Cracks[J]. ISIJ International, 1996,36 (3) : 284- 289.
  • 9Clyne T W, Wolf M, Kurz W. solidification cracking The effect of melt composition of steel, with particular reference to continuous casting [ J ]. Metallurgical Transactions, 1982,13B(2): 259-266.
  • 10Davies G J and Shin Y K. Solidification Technology in the Foundry and Cast House[M]. London: The Metal Society, 1979.

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