Mathematical Model for Prediction of Composition of Inclusions Formed during Solidification of Liquid Steel

被引:166
|
作者
Choudhary, S. K. [1 ]
Ghosh, A. [1 ]
机构
[1] Tata Steel, Div Res & Dev, Jamshedpur 831001, Bihar, India
关键词
steelmaking; continuous casting; steel billets; solidification; segregation models; inclusions; SOLUTE REDISTRIBUTION; OXIDE-INCLUSIONS; MNS PRECIPITATION; CALCIUM-TREATMENT; DEOXIDATION; MICROSEGREGATION; DIFFUSION;
D O I
10.2355/isijinternational.49.1819
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
Non-metallic inclusions originate mainly during secondary steelmaking due to deoxidation and other exogenous sources. Additional inclusions form during cooling and subsequent freezing of liquid steel. Rejection of solutes by the solidifying dendrites causes segregation of solutes in the interdendritic liquid with consequent build-up of their thermodynamic supersaturation. The work reported in the present paper was undertaken to develop a computation procedure for prediction of inclusion compositions formed during cooling and solidification of liquid steel. The model has been applied to an inclusion sensitive grade of steel. Segregation of various solutes with progress of freezing has been calculated using the Clyne-Kurz microsegregation equation. A sequential computation procedure involving segregation equation and thermodynamic equilibrium calculations by the Factsage thermodynamic software has been developed. Compositions of inclusions at various solid fractions have been determined. Model predictions have been compared with literature as well as with inclusion compositions determined in continuously cast billet samples using SEM-EDS. Reasonably good correspondence between model predictions and observed inclusions have been obtained.
引用
收藏
页码:1819 / 1827
页数:9
相关论文
共 50 条
  • [11] Kinetic model of non-metallic inclusions' precipitation during steel solidification
    Lehmann, J
    Rocabois, P
    Gaye, H
    JOURNAL OF NON-CRYSTALLINE SOLIDS, 2001, 282 (01) : 61 - 71
  • [12] Coupled model for growth of dendrites and inclusions during solidification process of molten steel
    Li, Z. Q.
    Yu, J. K.
    Yuan, L.
    MATERIALS RESEARCH INNOVATIONS, 2013, 17 : 60 - 66
  • [13] THE CONTROL OF THE MORPHOLOGY OF MNS INCLUSIONS IN STEEL DURING SOLIDIFICATION
    OIKAWA, K
    OHTANI, H
    ISHIDA, K
    NISHIZAWA, T
    ISIJ INTERNATIONAL, 1995, 35 (04) : 402 - 408
  • [14] MATHEMATICAL SOLIDIFICATION MODEL FOR STAINLESS-STEEL
    MIETTINEN, J
    SCANDINAVIAN JOURNAL OF METALLURGY, 1988, 17 (05) : 218 - 225
  • [15] Model for Inclusion Precipitation Kinetics During Solidification of Steel Applications in MnS and TiN Inclusions
    Shu, Qifeng
    Visuri, Ville-Valtteri
    Alatarvas, Tuomas
    Fabritius, Timo
    METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, 2020, 51 (06): : 2905 - 2916
  • [16] Model for Inclusion Precipitation Kinetics During Solidification of Steel Applications in MnS and TiN Inclusions
    Qifeng Shu
    Ville-Valtteri Visuri
    Tuomas Alatarvas
    Timo Fabritius
    Metallurgical and Materials Transactions B, 2020, 51 : 2905 - 2916
  • [17] Formation of Multi-Type Inclusions during the Cooling and Solidification of Steel: A Trend Model
    You, Dali
    Michelic, Susanne K.
    Bernhard, Christian
    METALS, 2018, 8 (06)
  • [18] A coupled mathematical model of microsegregation and inclusion precipitation during solidification of silicon steel
    Liu, ZZ
    Wei, J
    Cai, KK
    ISIJ INTERNATIONAL, 2002, 42 (09) : 958 - 963
  • [19] MATHEMATICAL MODEL TO PREDICT GROWTH AND ELIMINATION OF INCLUSIONS IN LIQUID STEEL STIREED BY NATURAL CONVECTION
    IYENGAR, RK
    PHILBROO.WO
    JOURNAL OF METALS, 1970, 22 (12): : A8 - &
  • [20] Concepts and characteristic curves for the kinetic transformation of nonmetallic inclusions in liquid steel during solidification and cooling and in solid steel during heating process
    Zhang Y.-X.
    Zhang L.-F.
    Wang J.-J.
    Ren Y.
    Ren Q.
    Yang W.
    Gongcheng Kexue Xuebao/Chinese Journal of Engineering, 2023, 45 (03): : 369 - 379