Physical Modeling and Numerical Simulation of Constricted High-Current Vacuum Arcs Under the Influence of a Transverse Magnetic Field

被引:25
作者
Shmelev, Dmitry L. [1 ]
Delachaux, Thierry [2 ]
机构
[1] Russian Acad Sci, Inst Electrophys, Ekaterinburg 620016, Russia
[2] ABB Switzerland Ltd, Corp Res, CH-5405 Baden, Switzerland
关键词
Modeling; vacuum arc; vacuum interrupter; CONTACTS; DRIVEN; PLASMA; TMF;
D O I
10.1109/TPS.2009.2024422
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
This paper deals with the numerical simulation of constricted high-current vacuum arcs (> 15 kA), driven by a transverse magnetic field. The magnetohydrodynamic approach and the radiative transfer equation in the P1 approximation, together with detailed treatment of heat transfer and evaporation at the electrodes, are used to describe the arc behavior self-consistently in a 2-D geometry. The model developed describes the cathode attachment of the constricted arc as a large laterally extended foot point, instead of as regular cathode spots. This model leads to the characterization of the physical quantities of the arc plasma and describes the arc motion. A stepwise movement of the arc results due to different instantaneous velocities of the current attachment areas at the cathode and the anode.
引用
收藏
页码:1379 / 1385
页数:7
相关论文
共 50 条
[41]   Study on Influence of Self-Generated Axial Magnetic Field Upon High-Current Vacuum Arc Behavior at a Long Contact Gap in High-Voltage Vacuum Interrupter [J].
Cheng, Shaoyong .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 2011, 39 (03) :911-917
[42]   Study on High-Current Vacuum Arc Characteristics Under Self-Generated Axial Magnetic Field of Contact at a Long Contact Gap for High-Voltage Vacuum Interrupters [J].
Cheng, Shaoyong ;
Wang, Jimei .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 2009, 37 (01) :243-253
[43]   Radiation Power of a High-Current Vacuum Arc Stabilized by an Axial Magnetic Field in the Visible and UV Ranges of the Spectrum [J].
Barinov, Yu A. ;
Zabello, K. K. ;
Logachev, A. A. ;
Poluyanova, I. N. ;
Sherstnev, E., V ;
Shkol'nik, S. M. .
TECHNICAL PHYSICS LETTERS, 2021, 47 (02) :118-121
[44]   Laser measurement of copper vapor density after a high-current vacuum arc discharge in an axial magnetic field [J].
Takahashi, S ;
Arai, K ;
Morimiya, O ;
Hayashi, K ;
Noda, E .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 2005, 33 (05) :1519-1526
[45]   Radiation Power of a High-Current Vacuum Arc Stabilized by an Axial Magnetic Field in the Visible and UV Ranges of the Spectrum [J].
Yu. A. Barinov ;
K. K. Zabello ;
A. A. Logachev ;
I. N. Poluyanova ;
E. V. Sherstnev ;
S. M. Shkol’nik .
Technical Physics Letters, 2021, 47 :118-121
[46]   Numerical and experimental modeling of melt flow in a directional solidification configuration under the combined influence of electrical current and magnetic field [J].
Negrila, Radu Andrei ;
Popescu, Alexandra ;
Vizman, Daniel .
EUROPEAN JOURNAL OF MECHANICS B-FLUIDS, 2015, 52 :147-159
[47]   Numerical Simulation of Low-Current Vacuum Arc Plasma Jet in Strong Axial Magnetic Field [J].
Shmelev, Dmitry L. ;
Uimanov, Igor V. ;
Frolova, Valeria P. .
PROCEEDINGS OF THE 2018 28TH INTERNATIONAL SYMPOSIUM ON DISCHARGES AND ELECTRICAL INSULATION IN VACUUM (ISDEIV 2018), VOL 2, 2018, :377-380
[48]   Experimental Investigation on the Inf1uence of Axial Magnetic Field Distribution on Resisting the Constriction of a High-Current Vacuum Arc [J].
史宗谦 ;
刘志刚 ;
贾申利 ;
宋晓川 ;
王立军 .
Plasma Science and Technology, 2009, 11 (03) :290-292
[49]   EXPERIMENTAL AND NUMERICAL MODELLING OF THE STEEL FLOW IN A CONTINUOUS CASTING MOULD UNDER THE INFLUENCE OF A TRANSVERSE DC MAGNETIC FIELD [J].
Timmel, K. ;
Miao, X. ;
Eckert, S. ;
Lucas, D. ;
Gerbeth, G. .
MAGNETOHYDRODYNAMICS, 2010, 46 (04) :437-448
[50]   Experimental Investigation of the Flow in a Continuous-Casting Mold under the Influence of a Transverse, Direct Current Magnetic Field [J].
Timmel, Klaus ;
Eckert, Sven ;
Gerbeth, Gunter .
METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, 2011, 42 (01) :68-80