Principles of Charge Estimation Methods Using High-Frequency Current Transformer Sensors in Partial Discharge Measurements

Journal Article (2020)
Author(s)

Armando Mor (TU Delft - DC systems, Energy conversion & Storage)

Fabio Muñoz (TU Delft - DC systems, Energy conversion & Storage)

L. C. Castro (TU Delft - ESP LAB)

Research Group
DC systems, Energy conversion & Storage
Copyright
© 2020 A. R. Mor, F.A. Muñoz Muñoz, L.C. Castro Heredia
DOI related publication
https://doi.org/10.3390/s20092520
More Info
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Publication Year
2020
Language
English
Copyright
© 2020 A. R. Mor, F.A. Muñoz Muñoz, L.C. Castro Heredia
Related content
Research Group
DC systems, Energy conversion & Storage
Issue number
9
Volume number
20
Pages (from-to)
1-16
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Abstract

This paper describes a simplified model and a generic model of high-frequency current transformer (HFCT) sensors. By analyzing the models, a universal charge estimation method based on the double time integral of the measured voltage is inferred. The method is demonstrated to be valid irrespective of HFCT sensor, assuming that its transfer function can be modelled as a combination of real zeros and poles. This paper describes the mathematical foundation of the method and its particularities when applied to measure nanosecond current pulses. In practice, the applicability of the method is subjected to the characteristics and frequency response of the sensor and the current pulse duration. Therefore, a proposal to use the double time integral or the simple time integral of the measured voltage is described depending upon the sensor response. The procedures used to obtain the respective calibration constants based on the frequency response of the HFCT sensors are explained. Two examples, one using a HFCT sensor with a broadband flat frequency response and another using a HFCT sensor with a non-flat frequency response, are presented.