• 《工程索引》(EI)刊源期刊
    • 中文核心期刊
    • 中國科技論文統計源期刊
    • 中國科學引文數據庫來源期刊

    留言板

    尊敬的讀者、作者、審稿人, 關于本刊的投稿、審稿、編輯和出版的任何問題, 您可以本頁添加留言。我們將盡快給您答復。謝謝您的支持!

    姓名
    郵箱
    手機號碼
    標題
    留言內容
    驗證碼

    基于熔池混勻度的轉爐煙氣分析定碳模型

    李南 林文輝 曹玲玲 劉青 孫樂飛 廖桑桑

    李南, 林文輝, 曹玲玲, 劉青, 孫樂飛, 廖桑桑. 基于熔池混勻度的轉爐煙氣分析定碳模型[J]. 工程科學學報, 2018, 40(10): 1244-1250. doi: 10.13374/j.issn2095-9389.2018.10.012
    引用本文: 李南, 林文輝, 曹玲玲, 劉青, 孫樂飛, 廖桑桑. 基于熔池混勻度的轉爐煙氣分析定碳模型[J]. 工程科學學報, 2018, 40(10): 1244-1250. doi: 10.13374/j.issn2095-9389.2018.10.012
    LI Nan, LIN Wen-hui, CAO Ling-ling, LIU Qing, SUN Le-fei, LIAO Sang-sang. Carbon prediction model for basic oxygen furnace off-gas analysis based on bath mixing degree[J]. Chinese Journal of Engineering, 2018, 40(10): 1244-1250. doi: 10.13374/j.issn2095-9389.2018.10.012
    Citation: LI Nan, LIN Wen-hui, CAO Ling-ling, LIU Qing, SUN Le-fei, LIAO Sang-sang. Carbon prediction model for basic oxygen furnace off-gas analysis based on bath mixing degree[J]. Chinese Journal of Engineering, 2018, 40(10): 1244-1250. doi: 10.13374/j.issn2095-9389.2018.10.012

    基于熔池混勻度的轉爐煙氣分析定碳模型

    doi: 10.13374/j.issn2095-9389.2018.10.012
    基金項目: 

    江西"十三五"省重點研發計劃資助項目(20171ACE50020)

    高等學校博士學科點專項科研基金資助項目(20120006110036)

    詳細信息
    • 中圖分類號: TF729

    Carbon prediction model for basic oxygen furnace off-gas analysis based on bath mixing degree

    • 摘要: 轉爐冶煉終點碳曲線擬合模型避開了熔池初始碳含量難以精準確定的問題,假設吹煉后期脫碳速率與熔池碳含量具有一定的函數關系,通過這種函數關系預報鋼水終點碳含量.終點碳的三次方模型和指數模型預報精度在±0.02%之間的命中率分別為85.9%和81.2%.運用熔渣分子理論,基于冶煉熱軋板材(SPHC)的渣組元成分,計算得出渣中FeO的活度為0.241.出鋼溫度為1686℃時,C和Fe元素選擇性氧化的臨界碳質量分數為0.033%.本文在傳統指數模型的基礎上,充分考慮了槍位、頂吹流量、底吹流量等操作參數對熔池脫碳速率的影響,建立了基于熔池混勻度的指數模型.基于熔池混勻度的指數模型與其他煙氣分析碳曲線擬合模型相比,命中率有所提高.以新鋼生產熱軋板材(目標碳質量分數為0.06%)時的煙氣數據為研究對象建模,終點碳質量分數預報誤差在±0.02%之間的有75爐次,占驗證數據量的88.2%.

       

    • [2] The Technical Society, The Iron and Steel Institute of Japan. Production and technology of iron and steel in Japan during 2011. ISIJ Int, 2012, 52(6):943
      [4] Sun S, Liao D S, Pyke N, et al. Development of an offgas/model technology to replace sublance operation for KOBM endpoint carbon control at Arcelor Mittal dofasco. Iron Steel Technol, 2008, 5(11):36
      [5] Hu Z G, He P, Tan M X, et al. Continuous determination of bath carbon content on 150 t BOF by off-gas analyzer. J Univ Sci Technol Beijing, 2003, 10(6):22
      [10] Cecca C D, Barella S, Mapelli C, et al. Thermal and chemical analysis of massive use of hot briquetted iron inside basic oxygen furnace. J Iron Steel Res, Int, 2017, 24(9):901
      [11] Blanco C, Diaz M. Model of mixed control for carbon and silicon in a steel converter. ISIJ Int, 1993, 33(7):757
      [12] Liang X M, Wang H F. The application of new predictive functional control in the converter gas recovery system. Appl Mech Mater, 2014, 685:289
      [13] Liao D S, Sun S, Boylan K, et al. Systematic KOBM process control based on off-gas information//AISTech 2013 Proceedings. Pittsburgh, 2013:839
      [14] Hu Z G, Liu L, He P, et al. A dynamical off-gas model on a 150 t BOF. Steel Times Int, 2003, 27(3):11
      [16] Dong K, Zhu R, Gao W, et al. Simulation of three-phase flow and lance height effect on the cavity shape. Int J Miner Metall Mater, 2014, 21(6):523
      [17] Barron M A, Medina D Y, Hilerio I. Numerical simulation of decarburization in a top-blown basic oxygen furnace. Modell Numer Simul Mater Sci, 2014, 4(3):94
      [18] Cao L L, Wang Z, Liu Q, et al. Physical modeling research on the stirring characteristics and mixing effect of an 80 t converter//Proceedings of the 6th International Congress on the Science and Technology of Steelmaking. Beijing, 2015:12
      [20] Li G H, Wang B, Liu Q, et al. A process model for BOF process based on bath mixing degree. Int J Miner Metall Mater, 2010, 17(6):715
    • 加載中
    計量
    • 文章訪問數:  822
    • HTML全文瀏覽量:  305
    • PDF下載量:  39
    • 被引次數: 0
    出版歷程
    • 收稿日期:  2017-11-08

    目錄

      /

      返回文章
      返回
      中文字幕在线观看