Numerical simulation of melt convection in a dual-electrode arc furnace for MgO production

被引:4
|
作者
Wang, Zhen [1 ]
Wang, Ninghui [2 ]
机构
[1] Dalian Univ Technol, Sch Innovat & Entrepreneurship, Dalian 116024, Peoples R China
[2] Dalian Univ Technol, Sch Elect Engn, Dalian 116024, Peoples R China
基金
对外科技合作项目(国际科技项目); 中国国家自然科学基金;
关键词
Compendex;
D O I
10.1007/s00231-018-2367-6
中图分类号
O414.1 [热力学];
学科分类号
摘要
DC electric arc melting is emerging as a promising technology for production of fused MgO. The dual-electrode DC electric arc furnace (EAF), an alternative design using an anode and cathode electrode instead of a three phase AC arc furnace, is investigated using computational modelling methods. Since the thermal field of the EAF is significantly influenced by the electromagnetic stirring of the molten bath, the melt convection are investigated with different electric currents and bath dimensions. Only a quarter 3D symmetry sector is considered for the analysis. The coupled non-linear conservation equations for mass, momentum, energy and electrical charge are solved with the commercial software ANSYS. The calculated flow field indicates that the melt convection is fully turbulent when the electric current reaches the rated value. The Lorentz force is the dominating driving force for the convection, and the mean velocity is almost a linear function of the Lorentz force. According to the Richardson number, the buoyancy becomes more important when the bath volume grows and the electric current decreases, and the Lorentz force becomes more important when the bath volume shrinks and the electric current increases. In order to make a comparison of magnetic stirring between DC and AC modes, 50HzAC power is assumed to supply the dual-electrode EAF. The time-averaged Lorentz force is computed in the time-harmonic analysis for the AC mode. It is found that the Lorentz force distribution is the same if the effective value of the AC current is equal to the DC current.
引用
收藏
页码:3509 / 3519
页数:11
相关论文
共 50 条
  • [1] Numerical simulation of melt convection in a dual-electrode arc furnace for MgO production
    Zhen Wang
    Ninghui Wang
    Heat and Mass Transfer, 2018, 54 : 3509 - 3519
  • [2] Numerical simulation of melt convection in an AC electro-fused magnesia furnace for MgO production
    Wang, Zhen
    Wang, Ninghui
    IET ELECTRIC POWER APPLICATIONS, 2018, 12 (05) : 701 - 707
  • [3] Numerical simulation of melt convection in an AC electro-fused magnesia furnace for MgO production
    Wang, Zhen
    Wang, Ninghui
    PROCEEDINGS OF THE 2017 5TH INTERNATIONAL CONFERENCE ON MECHATRONICS, MATERIALS, CHEMISTRY AND COMPUTER ENGINEERING (ICMMCCE 2017), 2017, 141 : 1008 - 1012
  • [4] The dual-electrode DC arc furnace-modelling insights
    Reynolds, Q. G.
    JOURNAL OF THE SOUTH AFRICAN INSTITUTE OF MINING AND METALLURGY, 2011, 111 (10): : 697 - 703
  • [5] The dual-electrode DC arc furnace-modelling brush arc conditions
    Reynolds, Q. G.
    JOURNAL OF THE SOUTHERN AFRICAN INSTITUTE OF MINING AND METALLURGY, 2012, 112 (07) : 605 - 611
  • [6] Dual-Electrode Melt Differential Electrospinning
    Xia, Qi
    Wang, Chunming
    Li, Wenchao
    Han, Wenwen
    Chen, Hongbo
    FIBERS AND POLYMERS, 2024, 25 (06) : 2029 - 2042
  • [7] Numerical simulation of thermal convection of a glass melt in a cylindrical induction furnace
    Schiff, VK
    Zamyatin, AN
    Zhilin, AA
    GLASTECHNISCHE BERICHTE-GLASS SCIENCE AND TECHNOLOGY, 1996, 69 (12): : 379 - 386
  • [8] Modeling and simulation of RSOA with a dual-electrode configuration
    Liu, Zhansheng
    Wu, Qingdian
    Wang, Hongji
    Violas, Manuel Alberto
    de Valicourt, Guilhem
    MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 2017, 59 (08) : 1824 - 1828
  • [9] Simulation of Dual-Electrode Capacitively Coupled Plasma Discharges
    路益嘉
    季林红
    程嘉
    Plasma Science and Technology, 2016, 18 (12) : 1175 - 1180
  • [10] Simulation of Dual-Electrode Capacitively Coupled Plasma Discharges
    Lu Yijia
    Ji Linhong
    Cheng Jia
    PLASMA SCIENCE & TECHNOLOGY, 2016, 18 (12) : 1175 - 1180