Computational Modeling of Temperature, Flow, and Crystallization of Mold Slag During Double Hot Thermocouple Technique Experiments

被引:0
|
作者
Lejun Zhou
Wanlin Wang
Rui Liu
Brian G. Thomas
机构
[1] Central South University,School of Metallurgical Science and Engineering
[2] University of Illinois at Urbana-Champaign,Department of Mechanical Science and Engineering
关键词
Natural Convection; Isothermal Crystallization; Mold Flux; Mold Wall; Slag Sample;
D O I
暂无
中图分类号
学科分类号
摘要
A three-dimensional finite-difference model has been developed to study heat transfer, fluid flow, and isothermal crystallization of mold slag during double hot thermocouple technique (DHTT) experiments. During the preheating stage, temperature in the middle of the mold slag sample was found to be significantly [~350 K (~77 °C)] lower than near the two thermocouples. During the quenching stage, the mold slag temperature decreases with the cooled thermocouple. The temperature across the mold slag achieves a steady, nonlinear temperature profile during the holding stage; the insulating effect of the crystallizing layer in the middle of the slag sample causes the high temperature region to become hotter, while the lower temperature mold slag becomes cooler. Fluid flow is driven by Marangoni forces along the mold slag surface from the hotter region to the cooler region, and then recirculates back through the interior. Slag velocities reach 7 mm/s. Crystallization is predicted to start in the middle of the slag sample first and then grows toward both thermocouples, which matches well with observations of the DHTT experiment.
引用
收藏
页码:1264 / 1279
页数:15
相关论文
共 29 条
  • [11] In Situ Observation and Investigation of Mold Flux Crystallization by Using Double Hot Thermocouple Technology
    Zhou, Lejun
    Wang, Wanlin
    Huang, Daoyuan
    Wei, Juan
    Li, Jin
    METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, 2012, 43 (04): : 925 - 936
  • [12] High-Temperature Properties of Mold Flux Observed and Measured In Situ by Single/Double Hot-Thermocouple Technique
    Wanlin Wang
    Peisheng Lyu
    Lejun Zhou
    Huan Li
    Tongsheng Zhang
    JOM, 2018, 70 : 1248 - 1255
  • [13] High-Temperature Properties of Mold Flux Observed and Measured In Situ by Single/Double Hot-Thermocouple Technique
    Wang, Wanlin
    Lyu, Peisheng
    Zhou, Lejun
    Li, Huan
    Zhang, Tongsheng
    JOM, 2018, 70 (07) : 1248 - 1255
  • [14] Crystallization behaviors concerned with TTT and CCT diagrams of blast furnace slag using hot thermocouple technique
    Kashiwaya, Yoshiaki
    Nakauchi, Toshiki
    Pham, Khanh Son
    Akiyama, Seitarou
    Ishii, Kuniyoshi
    ISIJ INTERNATIONAL, 2007, 47 (01) : 44 - 52
  • [15] Analysis of crystallization behavior of mold fluxes containing TiO2 using single hot thermocouple technique
    Yun Lei
    Bing Xie
    Wen-hui Ma
    Journal of Iron and Steel Research International, 2016, 23 : 322 - 328
  • [16] Analysis of Crystallization Behavior of Mold Fluxes Containing TiO2 Using Single Hot Thermocouple Technique
    Yun LEI
    Bing XIE
    Wen-hui MA
    Journal of Iron and Steel Research(International), 2016, 23 (04) : 322 - 328
  • [17] Analysis of Crystallization Behavior of Mold Fluxes Containing TiO2 Using Single Hot Thermocouple Technique
    Lei, Yun
    Xie, Bing
    Ma, Wen-hui
    JOURNAL OF IRON AND STEEL RESEARCH INTERNATIONAL, 2016, 23 (04) : 322 - 328
  • [18] Crystallization Behaviors of Mold Fluxes Containing Li2O Using Single Hot Thermocouple Technique
    Liu, Hui
    Wen, Guanghua
    Tang, Ping
    ISIJ INTERNATIONAL, 2009, 49 (06) : 843 - 850
  • [19] Crystallization Behavior of Rutile in the Synthesized Ti-bearing Blast Furnace Slag Using Single Hot Thermocouple Technique
    Li, Jing
    Wang, Xidong
    Zhang, Zuotai
    ISIJ INTERNATIONAL, 2011, 51 (09) : 1396 - 1402
  • [20] Study on Meniscus Temperature Fluctuation during Mold Oscillation in Continuous Casting by Modeling Experiments
    雷作胜
    张邦文
    邓康
    任忠鸣
    Journal of Shanghai University, 2002, (03) : 236 - 239