Title :
Numerical simulation of multi-component arcs in high-current vacuum interrupters
Author :
Wenzel, Norman ; Kosse, Sylvio ; Lawall, A. ; Renz, R. ; Hartmann, W.
Author_Institution :
Corp. Technol., Siemens AG, Erlangen, Germany
Abstract :
A transient three-dimensional numerical model has been developed to describe a diffuse multi-component vacuum arc between copper-chromium (CuCr) electrodes under the influence of an axial magnetic field (AMF). The model is based on a two-temperature magneto-hydrodynamic approach of the plasma and is realized with commercial simulation software (CFX) and in-house extensions. The quasi-neutral plasma is described as a two-fluid system distinguishing between electrons and multiply ionized heavy particles. The heavy particles are treated as a multi-component fluid containing Cu ions and Cr ions. The model incorporates balance equations for the ion momentum, balance equations for the ion and electron energy, and transport equations for the magnetic flux density and the radiation. The plasma parameters near the cathode are specified in terms of a self-consistent space-resolved numerical model of the cathode spot on CuCr contacts taking into account the granular structure of the contact material. The simulation is performed at different times during a 50 Hz electrical current cycle. Results are presented for plasma flows under realistic conditions referring to the geometry (140 mm diameter, 11 mm gap), the material (CuCr), and the spatio-temporal AMF profiles of a cup-shaped AMF contact system in an industrial high-current vacuum interrupter (72 kA). Depending on the characteristics of the mass flow near the cathode, distinct features of the energy transport onto the anode are calculated.
Keywords :
electrodes; numerical analysis; vacuum arcs; vacuum interrupters; AMF contact system; CuCr; axial magnetic field; commercial simulation software; contact material; copper-chromium electrodes; current 72 kA; diffuse multi-component vacuum arc; distance 11 mm; electrical current cycle; electron energy; electrons; energy transport; frequency 50 Hz; high-current vacuum interrupters; in-house extensions; industrial high-current vacuum interrupter; ion momentum; ionized heavy particles; magnetic flux density; multi-component arcs; multi-component fluid; numerical simulation; plasma flows; plasma parameters; quasi-neutral plasma; self-consistent space-resolved numerical model; size 140 mm; spatio-temporal AMF profiles; transient three-dimensional numerical model; transport equations; two-fluid system; two-temperature magneto-hydrodynamic; Anodes; Cathodes; Ions; Mathematical model; Numerical models; Plasmas; Vacuum arcs;
Conference_Titel :
Discharges and Electrical Insulation in Vacuum (ISDEIV), 2012 25th International Symposium on
Conference_Location :
Tomsk
Print_ISBN :
978-1-4673-1263-9
Electronic_ISBN :
1093-2941
DOI :
10.1109/DEIV.2012.6412518