Agglomeration of Non-metallic Inclusions at Steel/Ar Interface: In-Situ Observation Experiments and Model Validation

被引:0
|
作者
Wangzhong Mu
Neslihan Dogan
Kenneth S. Coley
机构
[1] McMaster University,Department of Materials Science and Engineering, McMaster Steel Research Centre
关键词
Inclusion Agglomeration; Attractive Capillary Forces; High-temperature CLSM; Al2O3 Inclusions; Large Size Inclusions;
D O I
暂无
中图分类号
学科分类号
摘要
Better understanding of agglomeration behavior of nonmetallic inclusions in the steelmaking process is important to control the cleanliness of the steel. In this work, a revision on the Paunov simplified model has been made according to the original Kralchevsky–Paunov model. Thus, this model has been applied to quantitatively calculate the attractive capillary force on inclusions agglomerating at the liquid steel/gas interface. Moreover, the agglomeration behavior of Al2O3 inclusions at a low carbon steel/Ar interface has been observed in situ by high-temperature confocal laser scanning microscopy (CLSM). The velocity and acceleration of inclusions and attractive forces between Al2O3 inclusions of various sizes were calculated based on the CLSM video. The results calculated using the revised model offered a reasonable fit with the present experimental data for different inclusion sizes. Moreover, a quantitative comparison was made between calculations using the equivalent radius of a circle and those using the effective radius. It was found that the calculated capillary force using equivalent radius offered a better fit with the present experimental data because of the inclusion characteristics. Comparing these results with other studies in the literature allowed the authors to conclude that when applied in capillary force calculations, the equivalent radius is more suitable for inclusions with large size and irregular shape, and the effective radius is more appropriate for inclusions with small size or a large shape factor. Using this model, the effect of inclusion size on attractive capillary force has been investigated, demonstrating that larger inclusions are more strongly attracted.
引用
收藏
页码:2379 / 2388
页数:9
相关论文
共 50 条
  • [21] NITROGEN AND NITRIDE NON-METALLIC INCLUSIONS IN STEEL
    Burja, Jaka
    Koleznik, Mitja
    Zuperl, Spela
    Klancnik, Grega
    MATERIALI IN TEHNOLOGIJE, 2019, 53 (06): : 919 - 928
  • [22] KIESSLING R - NON-METALLIC INCLUSIONS IN STEEL
    DAGOSTIN.
    METALLURGIA ITALIANA, 1965, 57 (09): : 348 - +
  • [23] FORMATION AND TRANSFORMATION OF NON-METALLIC INCLUSIONS IN STEEL
    VINOGRAD, MI
    KISELEVA, SA
    STEEL IN THE USSR, 1976, 6 (10): : 551 - 554
  • [24] NON-METALLIC INCLUSIONS IN STEEL .1.
    BRUCH, J
    STAHL UND EISEN, 1966, 86 (03): : 187 - &
  • [25] INFLUENCE OF NON-METALLIC INCLUSIONS ON PROPERTIES OF STEEL
    KIESSLING, R
    JOURNAL OF METALS, 1969, 21 (10): : 48 - +
  • [26] STRENGTH OF STEEL AS INFLUENCED BY NON-METALLIC INCLUSIONS
    FINKEL, VM
    ELESINA, OP
    ZRAICHEN.VA
    DOKLADY AKADEMII NAUK SSSR, 1968, 183 (03): : 576 - &
  • [27] INSPECTION OF STEEL FRACTURES FOR NON-METALLIC INCLUSIONS
    TSIVIRKO, EI
    SHULTE, YA
    BYALIK, GA
    ULITENKO, AN
    DANILOVSKII, VV
    INDUSTRIAL LABORATORY, 1981, 47 (01): : 31 - 34
  • [28] KIESSLING,R - NON-METALLIC INCLUSIONS IN STEEL
    PICKERING
    JOURNAL OF THE IRON AND STEEL INSTITUTE, 1967, 205 : 152 - &
  • [29] The Floating Removal of Non-metallic Inclusions in Steel
    Shi, Jingpei
    Zhang, Caijun
    Zhu, Liguang
    SUSTAINABLE DEVELOPMENT OF NATURAL RESOURCES, PTS 1-3, 2013, 616-618 : 1068 - 1072
  • [30] NON-METALLIC INCLUSIONS IN STEEL .21. INCLUSIONS WITH SELENIUM
    KIESSLIN.R
    JERNKONTORETS ANNALER, 1967, 151 (08): : 542 - &