DocumentCode :
158788
Title :
A coupled simulation model of the heating process on an anode under high-current vacuum arcs
Author :
Yunbo Tian ; Zhenxing Wang ; Zhipeng Zhou ; Yingsan Geng ; Zhiyuan Liu
Author_Institution :
State Key Lab. of Electr. Insulation & Power Equip., Xi´an Jiaotong Univ., Xi´an, China
fYear :
2014
fDate :
Sept. 28 2014-Oct. 3 2014
Firstpage :
257
Lastpage :
260
Abstract :
Anode activity is critical in a high-current interruption process of a vacuum interrupter. Under a high-current arc anode surface temperature may exceed melting point. Under such condition, an evaporation of metal vapor from an anode melting pool may play a role for a failure of the current interruption. The objective of this paper is to develop a 2D axisymmetric numerical simulation model of heat transfer from a vacuum arc column to an anode region under high-current vacuum arc. The model combined both the magnetohydrodynamic (MHD) model of a vacuum arc column and the heat transfer model of an anode region. The model deals with arc plasma behavior of arc column and heat transfer in the anode region in a coupled way. The temperature distribution, plasma pressure and flow velocity are given. The highest temperature on anode surface is about 1750K and appears at about 7ms. The effect of Lorentz force on the flow of arc plasma was significant. It pushed the arc plasma into the central region and affects the pressure distribution. The results can offer detailed information of high-current vacuum arc and its anode phenomena.
Keywords :
anodes; evaporation; heat transfer; heating; magnetohydrodynamics; temperature distribution; vacuum interrupters; 2D axisymmetric numerical simulation model; Lorentz force effect; anode melting pool; anode phenomena; anode region; anode surface; arc plasma behavior; arc plasma flow; coupled simulation model; current interruption; heat transfer; heat transfer model; heating process; high-current arc anode surface temperature; high-current interruption process; high-current vacuum arc; high-current vacuum arcs; magnetohydrodynamic model; metal vapor evaporation; plasma pressure; pressure distribution; temperature distribution; vacuum arc column; Anodes; Heat transfer; Heating; Mathematical model; Plasma temperature; Vacuum arcs;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Discharges and Electrical Insulation in Vacuum (ISDEIV), 2014 International Symposium on
Conference_Location :
Mumbai
Print_ISBN :
978-1-4799-6750-6
Type :
conf
DOI :
10.1109/DEIV.2014.6961668
Filename :
6961668
Link To Document :
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