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Refining the physical description of charge trapping and detrapping in a transport model for dielectrics using an optimization algorithm

Khaled Hallak (LAPLACE (Laboratoire Plasma et Conversion d’Energie), UPS, INPT, CNRS, University of Toulouse, Toulouse, France)
Fulbert Baudoin (LAPLACE (Laboratoire Plasma et Conversion d’Energie), UPS, INPT, CNRS, University of Toulouse, Toulouse, France)
Virginie Griseri (LAPLACE (Laboratoire Plasma et Conversion d’Energie), UPS, INPT, CNRS, University of Toulouse, Toulouse, France)
Florian Bugarin (ICA (Institut Clément Ader), CNRS/INSA/ISAE/Mines Albi/UPS, University of Toulouse, Toulouse, France)
Stephane Segonds (ICA (Institut Clément Ader), CNRS/INSA/ISAE/Mines Albi/UPS, University of Toulouse, Toulouse, France)
Severine Le Roy (LAPLACE (Laboratoire Plasma et Conversion d’Energie), UPS, INPT, CNRS, University of Toulouse, Toulouse, France)
Gilbert Teyssedre (LAPLACE (Laboratoire Plasma et Conversion d’Energie), UPS, INPT, CNRS, University of Toulouse, Toulouse, France)

COMPEL - The international journal for computation and mathematics in electrical and electronic engineering

ISSN: 0332-1649

Article publication date: 14 November 2023

Issue publication date: 23 November 2023

47

Abstract

Purpose

The purpose of this paper is to optimize and improve a bipolar charge transport (BCT) model used to simulate charge dynamics in insulating polymer materials, specifically low-density polyethylene (LDPE).

Design/methodology/approach

An optimization algorithm is applied to optimize the BCT model by comparing the model outputs with experimental data obtained using two kinds of measurements: space charge distribution using the pulsed electroacoustic (PEA) method and current measurements in nonstationary conditions.

Findings

The study provides an optimal set of parameters that offers a good correlation between model outputs and several experiments conducted under varying applied fields. The study evaluates the quantity of charges remaining inside the dielectric even after 24 h of short circuit. Moreover, the effects of increasing the electric field on charge trapping and detrapping rates are addressed.

Research limitations/implications

This study only examined experiments with different applied electric fields, and thus the obtained parameters may not suit the experimental outputs if the experimental temperature varies. Further improvement may be achieved by introducing additional experiments or another source of measurements.

Originality/value

This work provides a unique set of optimal parameters that best match both current and charge density measurements for a BCT model in LDPE and demonstrates the use of trust region reflective algorithm for parameter optimization. The study also attempts to evaluate the equations used to describe charge trapping and detrapping phenomena, providing a deeper understanding of the physics behind the model.

Keywords

Citation

Hallak, K., Baudoin, F., Griseri, V., Bugarin, F., Segonds, S., Le Roy, S. and Teyssedre, G. (2023), "Refining the physical description of charge trapping and detrapping in a transport model for dielectrics using an optimization algorithm", COMPEL - The international journal for computation and mathematics in electrical and electronic engineering, Vol. 42 No. 6, pp. 1923-1937. https://doi.org/10.1108/COMPEL-04-2023-0143

Publisher

:

Emerald Publishing Limited

Copyright © 2023, Emerald Publishing Limited

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