Volume 45 Issue 3
Jul.  2024
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Dong Xiaosen, Rao Jiating, Zheng Kui. Simulation of operation inner profile of blast furnace with smelting vanadium-titanium magnetite[J]. IRON STEEL VANADIUM TITANIUM, 2024, 45(3): 121-130, 154. doi: 10.7513/j.issn.1004-7638.2024.03.017
Citation: Dong Xiaosen, Rao Jiating, Zheng Kui. Simulation of operation inner profile of blast furnace with smelting vanadium-titanium magnetite[J]. IRON STEEL VANADIUM TITANIUM, 2024, 45(3): 121-130, 154. doi: 10.7513/j.issn.1004-7638.2024.03.017

Simulation of operation inner profile of blast furnace with smelting vanadium-titanium magnetite

doi: 10.7513/j.issn.1004-7638.2024.03.017
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  • Received Date: 2023-02-28
  • Publish Date: 2024-07-02
  • Based on the design parameters and production conditions of a vanadium-titanium magnetite smelting blast furnace, a numerical model of the vanadium-titanium blast furnace operation inner model was established through a MATLAB calculation software in order to study the slag adhering situation of the furnace wall within high temperature zone of the blast furnace operation. The predicated results show that the heat load of the furnace wall within high temperature zone is mostly below than 12 kW/(m2·s) due to the weaker airflow control at the edge of the blast furnace. The temperature on cooling staves is close to that on shell. Besides, It is higher than 100 mm, and the slag skull thickness at the hot surface on staves is generally higher than 100 mm while unevenly distributed, even reaching up to more than 200 mm at specific directions. Compared with ordinary blast furnaces, vanadium-titanium magnetite smelting blast furnaces show stronger slag adhering capacity within high-temperature zones given the same thermal load. Considering safety and slag skull stability, the heat load of vanadium-titanium blast furnace cooling staves should be controlled within 10.50~34.50 kW/ (m2·s).
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  • [1]
    Lin Chengcheng, Xiang Zhongyong. Characteristics of baosteel blast furnace profiles and their effects on operation[J]. Baosteel Technology, 2009,(2):49-53. (林成城, 项钟庸. 宝钢高炉炉型特点及其对操作的影响[J]. 宝钢技术, 2009,(2):49-53.

    Lin Chengcheng, Xiang Zhongyong. Characteristics of baosteel blast furnace profiles and their effects on operation[J]. Baosteel Technology, 2009(2): 49.
    [2]
    Chen Lingkun, Wang Yong, Fu Lianchun. Application of the balst furnace expert system to profile management on No. 4 BF at WISGCO[J]. Iron & Steel, 2000,35(9):5-9. (陈令坤, 汪勇, 付连春. 高炉冶炼专家系统在炉型管理中的应用[J]. 钢铁, 2000,35(9):5-9.

    Chen Lingkun, Wang Yong, Fu Lianchun. Application of the balst furnace expert system to profile management on No. 4 BF at WISGCO[J]. Iron & Steel, 2000, 35(9): 5.
    [3]
    Chen Peidun, Shao Shudong, Xue Yuqing. On furnace shape management and smooth work of furnace status of BF operation[J]. China Metallurgy, 2006,16(3):48-49. (陈培敦, 邵书东, 薛玉卿. 浅谈高炉操作炉型管理与炉况顺行[J]. 中国冶金, 2006,16(3):48-49.

    Chen Peidun, Shao Shudong, Xue Yuqing. On furnace shape management and smooth work of furnace status of BF operation[J]. China Metallurgy, 2006, 16(3): 48.
    [4]
    Shi Lin, Cheng Susen, Zuo Haibin. Numerical simulation of erosion boundary identification of blast furnace lining[J]. Journal of Iron and Steel Research, 2006,18(4):1-5. (石琳, 程素森, 左海滨. 高炉炉衬侵蚀边界识别的数值模拟[J]. 钢铁研究学报, 2006,18(4):1-5.

    Shi Lin, Cheng Susen, Zuo Haibin. Numerical simulation of erosion boundary identification of blast furnace lining [J]. Journal of Iron and Steel Research, 2006, 18(4): 1.
    [5]
    Li Junfeng, He Chuanyun, Ding Yuehua. Study on heat transfer and slag skull thickness in bosh and belly of blast furnace[J]. Research on Iron and Steel, 2014,42(6):12−15. (李骏峰, 何川云, 丁跃华. 高炉炉腹炉腰传热及渣皮厚度的研究[J]. 钢铁研究, 2014,42(6):12−15.

    Li Junfeng, He Chuanyun, Ding Yuehua. Study on heat transfer and slag skull thickness in bosh and belly of blast furnace[J]. Research on Iron and Steel, 2014, 42(6): 12-15.
    [6]
    Chen Zeshao, Qian Jun, Ye Yihuo. Predicting theory of effective thermal conductivity of complex material[J]. Journal of China University of Science and Technology, 1992,22(4):416−424. (陈则韶, 钱军, 叶一火. 复合材料等效导热系数的理论推算[J]. 中国科学技术大学学报, 1992,22(4):416−424.

    Chen Zeshao, Qian Jun, Ye Yihuo. Predicting theory of effective thermal conductivity of complex material[J]. Journal of China University of Science and Technology, 1992, 22(4): 416-424.
    [7]
    Zhang Feng, Xiao Jianzhuang, Song Zhiwen. The prediction models of thermal conductivity of concrete and their application[J]. Ready-Mixed Concrete, 2009,(2):23-25,51. (张枫, 肖建庄, 宋志文. 混凝土导热系数的理论模型及其应用[J]. 商品混凝土, 2009,(2):23-25,51.

    Zhang Feng, Xiao Jianzhuang, Song Zhiwen. The prediction models of thermal conductivity of concrete and their application[J]. Ready-Mixed Concrete, 2009(2): 23.
    [8]
    Ji Xiulan, Liu Zengxun, Lü Qing. Analysis on slag skull on bf copper cooling stave for vanadium-bearing titaniferous magnetite smelting[J]. Iron Steel Vanadium Titanium, 2012,33(1):65−69. (计秀兰, 刘增勋, 吕庆. 冶炼钒钛磁铁矿高炉的铜冷却壁挂渣分析[J]. 钢铁钒钛, 2012,33(1):65−69.

    Ji Xiulan, Liu Zengxun, Lv Qing. Analysis on slag skull on bf copper cooling stave for vanadium-bearing titaniferous magnetite smelting[J]. Iron Steel Vanadium Titanium, 2012, 33(1): 65-69.
    [9]
    Liu Zengxun, Lü Qing. Heat transfer analysis for slag skull thickness of blast furnace[J]. Iron Steel Vanadium Titanium, 2008,29(3):55−58. (刘增勋, 吕庆. 高炉渣皮厚度的传热分析[J]. 钢铁钒钛, 2008,29(3):55−58.

    Liu Zengxun, Lv Qing. Heat transfer analysis for slag skull thickness of blast furnace[J]. Iron Steel Vanadium Titanium, 2008, 29(3): 55-58.
    [10]
    Cao Yingjie, Zhang Jianliang, Guo Hongwei. Calculation of blast furnace inner wall thickness[J]. Journal of Iron and Steel Research, 2015,(1):7−11. (曹英杰, 张建良, 国宏伟. 高炉炉墙内型厚度的计算[J]. 钢铁研究学报, 2015,(1):7−11.

    Cao Yingjie, Zhang Jianliang, Guo Hongwei. Calculation of blast furnace inner wall thickness[J]. Journal of Iron and Steel Research, 2015(1): 7-11.
    [11]
    刘增勋. 高炉冷却壁热力耦合分析[D]. 沈阳: 东北大学, 2009.

    Liu Zengxun. Coupled thermos-mechanical analysis about blast furnace staves[D]. Shenyang: Northeastern University, 2009.
    [12]
    Cheng Susen, Qian Liang, Zhao Hongbo. Monitoring method for blast furnace wall with copper staves[J]. Journal of Iron and Steel Research, International, 2007,14(4):1−5.
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