DocumentCode :
82534
Title :
Arc Cooling Mechanisms in a Model Circuit Breaker
Author :
Panousis, Emmanouil ; Bujotzek, M. ; Christen, Thomas
Author_Institution :
Corp. Res., ABB Switzerland Ltd., Baden-Dättwil, Switzerland
Volume :
29
Issue :
4
fYear :
2014
fDate :
Aug. 2014
Firstpage :
1806
Lastpage :
1813
Abstract :
Axially blown electric arcs in a model circuit breaker are investigated by electrical measurements and fast imaging with a high-speed camera for visualizing the arc structure. Parameters for a dynamic conductance model (known as the “black-box model” in the arc literature) are extracted from the electrical measurements for currents between a few tens of amperes and a few kiloamperes. The model is used for the prediction of the conductance-dependent cooling power and arc relaxation time, as well as the voltage-current characteristics of the arcs in our system. In order to work out the relevance of the different cooling mechanisms, an alternative and more physically based dynamic model for axially blown arcs is incorporated. It turns out that convective cooling predominates turbulent heat conduction and radiation cooling in the region of validity of the model. The result is consistent with the observed strong dependence of the cooling power on the flow conditions that are controlled by the blow-gas pressure and the geometry. Furthermore, the comparison between air and SF6 arcs indicates a considerable dependence of the conductance-cooling relation on the gas type.
Keywords :
arcs (electric); cameras; circuit breakers; cooling; heat conduction; arc cooling mechanisms; arc literature; arc relaxation time; arc structure; axially blown electric arcs; black-box model; blow-gas pressure; circuit breaker; conductance-dependent cooling power; convective cooling; dynamic conductance model; electrical measurements; fast imaging; geometry; high-speed camera; radiation cooling; turbulent heat conduction; voltage-current characteristics; Atmospheric modeling; Cooling; Current measurement; Electrodes; Integrated circuit modeling; Mathematical model; Shape; Arc modeling; electric arc discharge; gas circuit breaker (GCB); interrupter;
fLanguage :
English
Journal_Title :
Power Delivery, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8977
Type :
jour
DOI :
10.1109/TPWRD.2014.2312134
Filename :
6799290
Link To Document :
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