Study of EPR-based nanodielectrics under operational conditions for DC cable insulation

Author:

Arab Baferani Mohamadreza12ORCID,Shahsavarian Tohid12ORCID,Tefferi Mattewos12ORCID,Chen Qin3,Cao Yang12ORCID

Affiliation:

1. Department of Electrical and Computer Engineering, University of Connecticut, Storrs, Connecticut 06269, USA

2. Electrical Insulation Research Center, Institute of Material Science, University of Connecticut, Storrs, Connecticut 06269, USA

3. GE Global Research Center, Niskayuna, New York 12309, USA

Abstract

A model DC material based on ethylene propylene rubber (EPR) including the pure EPR and the EPR-based nanodielectrics incorporated with two different nanoclays, Kaoline and Talc, under operational conditions was investigated. The operational conditions include a 20 kV/mm electric field at 25 °C, a 20 kV/mm electric field at 50 °C with a thermal gradient, and a 40 kV/mm electric field at 50 °C with a thermal gradient and polarity reversal. Space charge distribution, surface potential, and electrical conductivity were measured to characterize the model DC material and interpret the discrete charge dynamics in the bulk and at the interface of the three samples. The experimental results revealed that the electrical conductivity of Talc-filled nanodielectric has the least dependency on electric field and temperature, which reduces the conductivity gradient across the dielectric. Moreover, the successful suppression of space charge and the lower dielectric time constant in the Talc-filled nanodielectric result in a tuning electric field in the bulk not only under normal operating conditions but also more importantly under polarity reversal conditions. The maximum of absolute charge density decreases from 10.6 C/m3 for EPR to 2.9 C/m3 for the Talc-filled nanodielectric under 40 kV/mm with polarity reversal and at 50 °C with the thermal gradient. The maximum of local electric field enhancement for the mentioned condition reduces significantly from 97 kV/mm, 142% enhancement, for EPR to 45 kV/mm, only 12.5% enhancement, for the Talc-filled nanodielectric.

Funder

National Science Foundation

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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