DocumentCode
20918
Title
Time-Domain Approach to Estimate Series Capacitance of an Isolated Phase Winding of a Transformer
Author
Pramanik, Sarah ; Satish, L.
Author_Institution
Dept. of Electr. Eng., Indian Inst. of Sci., Bangalore, India
Volume
29
Issue
4
fYear
2014
fDate
Aug. 2014
Firstpage
1939
Lastpage
1945
Abstract
Information available in frequency response data is equivalently available in the time domain as a response due to an impulse excitation. The idea to pursue this equivalence to estimate series capacitance is linked to the well-known fact that under impulse excitation, the line/neutral current in a transformer has three distinct components, of which, the initial capacitive component is the first to manifest, followed by the oscillatory and inductive components. Of these, the capacitive component is temporally well separated from the rest-a crucial feature permitting its direct access and analysis. Further, the winding initially behaves as a pure capacitive network, so the initial component must obviously originate from only the (series and shunt) capacitances. With this logic, it should therefore be possible to estimate series capacitance, just by measuring the initial capacitive component of line current and the total shunt capacitance. The principle of the method and details of its implementation on two actual isolated transformer windings (uniformly wound) are presented. For implementation, a low-voltage recurrent surge generator, a current probe, and a digital oscilloscope are all that is needed. The method is simple and requires no programming and needs least user intervention, thus paving the way for its widespread use.
Keywords
capacitance; time-domain analysis; transformer windings; current probe; digital oscilloscope; impulse excitation; initial capacitive component; isolated phase transformer winding; isolated transformer winding; line current; low-voltage recurrent surge generator; neutral current; series capacitance estimation; time domain method; total shunt capacitance; uniformly wound transformer winding; Capacitance; Current measurement; Frequency measurement; Impedance; Time-domain analysis; Voltage measurement; Windings; Impulse excitation; series capacitance; time response; transformer winding;
fLanguage
English
Journal_Title
Power Delivery, IEEE Transactions on
Publisher
ieee
ISSN
0885-8977
Type
jour
DOI
10.1109/TPWRD.2014.2305763
Filename
6757011
Link To Document