DocumentCode
86391
Title
Electrical Properties of Nanocrystalline CuCr25 Contact Material
Author
Laijun Zhao ; Zhenbiao Li ; Kunyu Shi ; Junjia He ; Huijie Li
Author_Institution
State Key Lab. of Adv. Electromagn. Eng. & Technol., Huazhong Univ. of Sci. & Technol., Wuhan, China
Volume
3
Issue
4
fYear
2013
fDate
Apr-13
Firstpage
625
Lastpage
632
Abstract
Four pieces of nanocrystalline CuCr25 contacts with 45-mm diameter and 3-mm thickness were prepared, brazed onto cup-axial magnetic field electrodes, and assembled in two commercial vacuum interrupters to test their chopping current, ac dielectric breakdown voltage, and breaking capacity. For comparison, two microcrystalline CuCr25 contacts were also prepared as above. The test vacuum interrupters were operated by a 24-kV circuit breaker with a spring-operated mechanism. The opening velocity was 1.3 m/s and the arc current frequency was about 50 Hz. The experimental results showed that both the chopping current and the ac dielectric breakdown voltage of nanocrystalline CuCr25 contact material were lower than those of the microcrystalline CuCr25 material. The breaking capacity of nanocrystalline CuCr25 material was significantly lower than that of microcrystalline CuCr25. The cathode and the anode contact surfaces of nanocrystalline CuCr25 were seriously eroded by arc in the local areas, and obvious cracks occurred.
Keywords
anodes; arcs (electric); cathodes; circuit breakers; copper compounds; magnetic fields; nanostructured materials; vacuum interrupters; CuCr; ac dielectric breakdown voltage; anode contact surfaces; arc current; breaking capacity; cathode contact surfaces; chopping current; circuit breaker; cup-axial magnetic field electrodes; electrical properties; microcrystalline material; nanocrystalline contact material; size 3 mm; size 45 mm; vacuum interrupters; velocity 1.3 m/s; voltage 24 kV; Cathodes; Contacts; Electric breakdown; Interrupters; Nanostructured materials; Time frequency analysis; Breaking capacity; CuCr; chopping current; dielectric withstand voltage; nanocrystalline material;
fLanguage
English
Journal_Title
Components, Packaging and Manufacturing Technology, IEEE Transactions on
Publisher
ieee
ISSN
2156-3950
Type
jour
DOI
10.1109/TCPMT.2012.2225062
Filename
6375796
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