DocumentCode :
1188932
Title :
Physics of high-current interruption of vacuum circuit breakers
Author :
Schade, Ekkehard
Author_Institution :
ABB Switzerland Ldt., Corp. Res., Baden, Switzerland
Volume :
33
Issue :
5
fYear :
2005
Firstpage :
1564
Lastpage :
1575
Abstract :
The present state of knowledge concerning the physical phenomena of high-current interruption with vacuum interrupters (VI) is reviewed. Two arc control methods, application of externally applied axial magnetic field (AMF) or transverse magnetic field (TMF), are available to distribute the heat flux from arc to contacts homogeneously over contact surface, to avoid local overheating. AMF spreads the arc at fixed location. TMF moves the constricted arc over contact surface. Change from diffuse to constricted arcing mode results from superposition of two effects: "instability of anode sheath" and "influence of magneto-gas-dynamic", when no AMF component exists. Conditions of arc memory at current zero determine the process of current extinction and of recovery of breakdown strength to its ultimate value. Evaporation of metal vapor continues. Charge exchange between fast ions and slow vapor atoms increases the residual charge, left in the switching gap at current zero. Post arc current prolongs and increases consequently. Breakdown during recovery of dielectric strength occurs instantaneously or sporadically delayed. Behavior of breakdown is essentially determined by vapor density. Breakdown mechanism of delayed breakdown is still unresolved. Vapor density is too low to initiate breakdown alone. Lack of fundamental knowledge in combination with complexity hampers numerical treatment of arc behavior, as well as heat flux to contact during arcing and process of interruption presently, as needed for interpretation of experimental results and prediction purposes.
Keywords :
electric strength; plasma density; plasma instability; plasma magnetohydrodynamics; plasma sheaths; plasma transport processes; plasma-wall interactions; reviews; vacuum arcs; vacuum circuit breakers; vacuum interrupters; anode sheath instability; arc control; arcing mode; axial magnetic field; breakdown strength; charge exchange; current extinction; dielectric strength recovery; heat flux; high-current interruption; magnetogasdynamic; metal vapor evaporation; overheating; post arc current; residual charge; review; switching gap; transverse magnetic field; vacuum circuit breakers; vacuum interrupters; vapor density; Anodes; Circuit breakers; Delay; Dielectric breakdown; Electric breakdown; Interrupters; Magnetic fields; Magnetic flux; Physics; Temperature control; Arc control; high-current vacuum arc; interruption of current; physical phenomena; recovery of breakdown strength; review; vacuum interrupter;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2005.856530
Filename :
1518979
Link To Document :
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