DocumentCode
1339495
Title
Superconducting fault current limiter application in a power-dense marine electrical system
Author
Blair, Steven M. ; Booth, Campbell D. ; Elders, I.M. ; Singh, Neeraj Kumar ; Burt, Graeme M. ; McCarthy, John
Author_Institution
Inst. for Energy & Environ., Univ. of Strathclyde, Glasgow, UK
Volume
1
Issue
3
fYear
2011
fDate
9/1/2011 12:00:00 AM
Firstpage
93
Lastpage
102
Abstract
Power-dense, low-voltage marine electrical systems have the potential for extremely high fault currents. Superconducting fault current limiters (SFCLs) have been of interest for many years and offer an effective method for reducing fault currents. This is very attractive in a marine vessel in terms of the benefits arising from reductions in switchgear rating (and consequently size, weight and cost) and damage at the point of fault. However, there are a number of issues that must be considered prior to installation of any SFCL device(s), particularly in the context of marine applications. Accordingly, this study analyses several such issues, including: location and resistance sizing of SFCLs; the potential effects of an SFCL on system voltage, power and frequency; and practical application issues such as the potential impact of transients such as transformer inrush. Simulations based upon an actual vessel are used to illustrate discussions and support assertions. It is shown that SFCLs, even with relatively small impedances, are highly effective at reducing prospective fault currents; the impact that higher resistance values has on fault current reduction and maintaining the system voltage for other non-faulted elements of the system is also presented and it is shown that higher resistance values are desirable in many cases. It is demonstrated that the exact nature of the SFCL application will depend significantly on the vessel´s electrical topology, the fault current contribution of each of the generators, and the properties of the SFCL device, such as size, weight, critical current value and recovery time.
Keywords
marine systems; power transformers; superconducting fault current limiters; switchgear; electrical topology; fault current reduction; location sizing; low-voltage marine electrical systems; marine vessel; nonfaulted elements; power-dense marine electrical system; resistance sizing; superconducting fault current limiter; switchgear rating; transformer inrush;
fLanguage
English
Journal_Title
Electrical Systems in Transportation, IET
Publisher
iet
ISSN
2042-9738
Type
jour
DOI
10.1049/iet-est.2010.0053
Filename
6034624
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