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含钛微合金钢保护渣固态渣膜析晶传热性能研究

刘国旗 徐子谦 司旭林 孔麒畅 黄伟丽 王杏娟

刘国旗, 徐子谦, 司旭林, 孔麒畅, 黄伟丽, 王杏娟. 含钛微合金钢保护渣固态渣膜析晶传热性能研究[J]. 钢铁钒钛, 2026, 47(1): 149-156. doi: 10.7513/j.issn.1004-7638.2026.01.017
引用本文: 刘国旗, 徐子谦, 司旭林, 孔麒畅, 黄伟丽, 王杏娟. 含钛微合金钢保护渣固态渣膜析晶传热性能研究[J]. 钢铁钒钛, 2026, 47(1): 149-156. doi: 10.7513/j.issn.1004-7638.2026.01.017
LIU Guoqi, XU Ziqian, SI Xulin, KONG Qichang, HUANG Weili, WANG Xingjuan. Study on crystallization and heat transfer performance of solid slag film in mold flux for titanium-bearing microalloyed steel[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(1): 149-156. doi: 10.7513/j.issn.1004-7638.2026.01.017
Citation: LIU Guoqi, XU Ziqian, SI Xulin, KONG Qichang, HUANG Weili, WANG Xingjuan. Study on crystallization and heat transfer performance of solid slag film in mold flux for titanium-bearing microalloyed steel[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(1): 149-156. doi: 10.7513/j.issn.1004-7638.2026.01.017

含钛微合金钢保护渣固态渣膜析晶传热性能研究

doi: 10.7513/j.issn.1004-7638.2026.01.017
基金项目: 中央引导地方科技发展资金项目(246Z1007G);国家自然科学基金(52374335,51974133)。
详细信息
    作者简介:

    刘国旗,1970年出生,男,硕士,工程师,主要研究方向为钢铁冶金技术与研究,E-mail: 652164366@qq.com

    通讯作者:

    徐子谦,1989年出生,男,硕士,工程师,主要研究方向为钢铁冶金技术,连铸保护渣,E-mail:xzqjszx123123@126.com

  • 中图分类号: TF065;TF777

Study on crystallization and heat transfer performance of solid slag film in mold flux for titanium-bearing microalloyed steel

  • 摘要: 保护渣固态渣膜是结晶器和铸坯间的关键介质。基于渣膜热流模拟仪制取的含钛微合金钢保护渣固态渣膜,对渣膜的厚度、孔隙度、粗糙度等物理性质进行分析;使用XRD、扫描电镜、矿相显微镜分析渣膜的析晶性能;此外,对渣膜的热阻、热流密度等传热性能进行研究。研究结果表明,渣膜表面粗糙度在固态渣膜凝固初期就已形成,受液渣温度变化影响明显;固态渣膜呈现玻璃态和结晶态两层结构,且矿相主要为钙钛矿;铜探头浸入液渣初期,热流密度迅速增大,当水冷铜探头浸入液渣时间13 s时,保护渣的热流密度均到达了最大值,分别为0.988、1.208 MW/m2和1.355 MW/m2,随着铜探头浸入时间的增加,固态渣膜逐渐变厚,热阻变大,热流密度逐渐降低。
  • 图  7  渣膜横截面电子图像及EDS分析结果

    (a)钙钛矿电子图像;(b)钙钛矿能谱分析结果

    Figure  7.  Cross-sectional electron image of the slag film and EDS analysis result

    图  1  结晶器渣膜热流模拟

    Figure  1.  Mold flux film heat flux simulation

    图  2  结晶器热流模拟仪热阻

    Figure  2.  Thermal resistance of mold heat flux simulator

    图  3  固态渣膜截面形貌和孔隙度

    (a)截面形貌;(b)孔隙度

    Figure  3.  Cross-sectional morphology and porosity of solid slag film

    图  4  渣膜与铜探头壁接触形貌和固渣膜与水冷铜壁接触表面3D形貌

    (a)渣膜与铜探头壁接触形貌;(b)固渣膜与水冷铜壁接触表面3D形貌

    Figure  4.  Morphologies of the contact interface between slag film and copper probe wall and the 3D contact surface between solid slag film and water-cooled copper wall

    图  5  渣膜与水冷铜壁接触表面粗糙度

    Figure  5.  Surface roughness of the slag film in contact with the water-cooled copper wall

    图  6  1300 ℃、浸入45 s时渣膜X射线衍射结果

    Figure  6.  X-ray diffraction results of the slag film at 1300 ℃ for 45 s

    图  8  保护渣不同凝固时间下的渣膜截面形貌

    Figure  8.  Cross-sectional morphology of the slag film under different solidification times of mold flux

    (a)15 s;(b)30 s;(c)45 s;(d)60 s。

    图  9  渣膜截面观察图

    (a)固态渣膜孔洞附近晶体形貌;(b)钙钛矿晶体形貌

    Figure  9.  Cross-sectional observation images of the slag film

    图  10  固态渣膜热阻与厚度的拟合曲线

    Figure  10.  Fitting curve of thermal resistance and thickness of the solid slag film

    图  11  不同液渣温度的热流密度变化

    Figure  11.  Heat flux density variation at different liquid slag temperatures

    表  1  含钛微合金钢保护渣成分及性能

    Table  1.   Composition and properties of mold flux for titanium-bearing microalloyed steel

    Composition/% Viscosity/
    (Pa·s)
    Melting
    temperature/℃
    CaO Al2O3 TiO2 SiO2 BaO Na2O MgO Li2O B2O3 Tc
    24 24.2 10.1 4.0 9.9 8.1 3.0 0.9 8.2 8.1 0.37 1070
    下载: 导出CSV

    表  2  保护渣固态渣膜厚度统计

    Table  2.   Statistics on the thickness of the solid slag film of mold flux mm

    120013001400
    15 s30 s45 s60 s15 s30 s45 s60 s15 s30 s45 s60 s
    2.823.153.754.222.092.362.672.941.301.721.862.33
    下载: 导出CSV
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出版历程
  • 收稿日期:  2025-12-09
  • 录用日期:  2025-12-25
  • 修回日期:  2025-12-18
  • 网络出版日期:  2026-02-25
  • 刊出日期:  2026-02-25

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