Melt azimuthal rotation in direct current electric arc furnace without external axial magnetic field

被引:0
|
作者
Pavlovs, Sergejs [1 ]
Jakovics, Andris [1 ]
Chudnovsky, Alexander [2 ]
机构
[1] Univ Latvia, Inst Numer Modelling, 3 Jelgavas St, LV-1004 Riga, Latvia
[2] LATVO, JSC, Riga, Latvia
关键词
Direct current (DC); electric arc furnace (EAF); electro-vortex flow (EVF); large eddy simulation (LES); melt rotation; external magnetic field; ELECTROVORTEX FLOW;
D O I
10.3233/JAE-230173
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper considers the azimuthal rotation of melt about the vertical axis of a DC EAF, which is ensured by an inclined installation of the power supply electrodes, which is a patented solution that is the basis for this article. Near inclined electrodes, the Lorentz force has a pronounced azimuthal component, which is the driver of the melt rotation without an external axial magnetic field - thus, additional energy consumption to create an external magnetic field is not necessary. The main design and technological solutions, formulated in the patent and presented by the authors, were obtained using observations and numerical LES study for a laboratory-scale experimental setup (capacity 4.8 kg of GaInSn), as well as using LES computations for an industrial-scale DC EAF (capacity 3.6 t of molten steel). Basic technological solutions studied: the flow of the melt may be controlled by varying the number of vertical and inclined electrodes of DC EAF, choosing the angle of inclination of the electrodes as well as choosing the sequence of turning on and turning off power supply through the electrodes.
引用
收藏
页码:145 / 157
页数:13
相关论文
共 50 条
  • [21] Low current vacuum arc in strong axial magnetic field
    Shmelev, DL
    ISDEIV: XXITH INTERNATIONAL SYMPOSIUM ON DISCHARGES AND ELECTRICAL INSULATION IN VACUUM, VOLS 1 AND 2, PROCEEDINGS, 2004, 21 : 265 - 268
  • [22] Applied axial magnetic field effects on laboratory plasma jets: Density hollowing, field compression, and azimuthal rotation
    Byvank, T.
    Banasek, J. T.
    Potter, W. M.
    Greenly, J. B.
    Seyler, C. E.
    Kusse, B. R.
    PHYSICS OF PLASMAS, 2017, 24 (12)
  • [23] Investigations on Arc Movement in Vacuum Interrupters by Arc Rotation Measurements with External Magnetic Field Sensors
    Rettenmaier, T.
    Hinrichsen, V.
    Taylor, E.
    PROCEEDINGS OF THE 2014 26TH INTERNATIONAL SYMPOSIUM ON DISCHARGES AND ELECTRICAL INSULATION IN VACUUM (ISDEIV-2014), 2014, : 149 - 152
  • [24] Numerical simulation of effect of arc current and axial magnetic field on low current vacuum arc characteristics
    Wang, Lijun
    Jia, Shenli
    Shi, Zongqian
    Rong, Mingzhe
    Diangong Jishu Xuebao/Transactions of China Electrotechnical Society, 2007, 22 (01): : 54 - 61
  • [25] CARBON NANOTUBES SYNTHESIS BY ELECTRIC ARC PLASMA WITH EXTERNAL MAGNETIC FIELD
    Raniszewski, Grzegorz
    Szymanski, Lukasz
    Kolacinski, Zbigniew
    NANOCON 2012, 4TH INTERNATIONAL CONFERENCE, 2012, : 131 - 136
  • [26] Effect of the axial external magnetic field on copper/aluminium arc weld joining
    Liu, Y. B.
    Sun, Q. J.
    Wang, H.
    Zhang, H. M.
    Cai, S. J.
    Feng, J. C.
    SCIENCE AND TECHNOLOGY OF WELDING AND JOINING, 2016, 21 (06) : 460 - 465
  • [27] Arc behaviour in axial magnetic field vacuum interrupters equipped with an external coil
    Schellekens, H
    ISDEIV: XVIIITH INTERNATIONAL SYMPOSIUM ON DISCHARGES AND ELECTRICAL INSULATION IN VACUUM - PROCEEDINGS, VOLS 1 AND 2, 1998, 18 : 514 - 517
  • [28] High-current vacuum arc in a strong axial magnetic field
    Chaly, Alexey M.
    Logatchev, Alexander A.
    Zabello, Konstantin K.
    Shkol'nik, Sergey M.
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2007, 35 (04) : 939 - 945
  • [29] On the effect of an axial magnetic field on the high-current vacuum arc
    Keidar, M
    Schulman, MB
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2000, 28 (01) : 347 - 350
  • [30] On the induced azimuthal electric field in the current drive of an odd-parity rotating magnetic field
    Shi, Peiyun
    Ren, Baoming
    Zhu, Guanghui
    Luo, Ming
    Zheng, Jian
    Sun, Xuan
    PHYSICS OF PLASMAS, 2019, 26 (02)