Laplace Transform-Based Modelling, Surge Energy Distribution, and Experimental Validation of a Supercapacitor Transient Suppressor

Author:

Silva Thotabaddadurage Sadeeshvara1ORCID

Affiliation:

1. Electric Power Engineering Centre, Faculty of Engineering, University of Canterbury, Christchurch 8140, New Zealand

Abstract

The discovery of the transient-surge-withstanding capability of electrochemical dual-layer capacitors (EDLCs) led to the development of a unique, commercially beneficial circuit topology known as a supercapacitor transient suppressor (STS). Despite its low component count, the new design consists of a transient-absorbing magnetic core which takes the form of a coupled inductor placed between the AC-main- and load-side varistors. With an introduction to the structural features of metal oxide varistors (MOVs), gas tubes, thyristors, and EDLCs, this research presents a frequency (S)-domain analysis of an STS circuit to accurately model the surge propagation through its coupled inductor. Transient energy distribution trends among STS components are estimated in this paper, with an emphasis on peak energies absorbed and dissipated by the various inductive, capacitive, and resistive circuit elements. Moreover, this study reveals STS transient-mode test waveforms validated by a standard lightning surge simulator with supporting simulation plots based on LTSpice numerical techniques. Both experimental and simulation results are consistent, with the analytical findings showing 90% of the peak transient propagating through the primary coil, whereas only 10% is shared into the secondary coil of the coupled inductor. In addition, it is proven that the two STS MOVs dissipate over 50% of the transient energy for a standard 6 kV/3 kA combinational surge, while the magnetic core absorbs over 20% of the energy. All test procedures conducted during this research adhere to IEEE C62.41/IEC 61000-4-5 standards.

Publisher

MDPI AG

Subject

Computer Science (miscellaneous)

Reference58 articles.

1. Dranetz, T. (2020). The Dranetz Field Handbook for Power Quality Analysis, Dranetz Technologies Incorporated.

2. Seksena, S.B.L., and Kaustuv, D. (2018). Fundamentals of Electrical Engineering, Cambridge University Press.

3. Fuchs, E.F., and Masoum, M.A.S. (2023). Power Quality in Power Systems, Electrical Machines, and Power-Electronic Drives, The Academic Press. [3rd ed.].

4. Targosz, R., and Manson, J. (2017, January 9–11). Pan-European power quality survey. Proceedings of the 2017 9th International Conference on Electrical Power Quality and Utilisation, Barcelona, Spain.

5. Barnes, J.R. (2019). Robust Electronic Design Reference Book, Springer.

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