Self-Healing Silicones for Outdoor High Voltage Insulation: Mechanism, Applications and Measurements

Fadi Z. Kamand, Basharat Mehmood, Refat Ghunem*, Mohammad K. Hassan, Ayman El-Hag, Leena Al-Sulaiti, Ahmed Abdala

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

15 Citations (Scopus)

Abstract

This paper discusses the state of the art in the application of self-healing silicone-based materials for outdoor high-voltage insulation. Both the dynamic behavior of the dimethyl side groups of silicone rubber and the diffusion of a bulk siloxane to maintain low surface energy are respectively reported as intrinsic mechanisms responsible for the self-healing of silicone rubber. Localization, temporality, mobility, and the type of synthesis are the aspects defining the efficiency of the self-healing ability of silicone rubber. In addition, the deterioration of the self-healing ability with filler loaded into silicone rubber insulation housing composites is discussed. Taking the self-healing property into consideration among the other properties of silicone rubber insulators, such as tracking and erosion resistance, can be a useful design practice at the material development stage. Hydrophobicity retention, recovery, and transfer measurements are discussed as useful indicators of the self-healing ability of silicone rubber. Nevertheless, there remains a need to standardize them as design tests at the material development stage. The paper is intended to shed the light on the hydrophobicity recovery, a key material design parameter in the development of silicone rubber outdoor insulating composites, similar to the tracking and erosion resistance.

Original languageEnglish
Article number1677
Number of pages17
JournalEnergies
Volume15
Issue number5
DOIs
Publication statusPublished - 1 Mar 2022
Externally publishedYes

Keywords

  • Fillers
  • Outdoor insulation
  • Self-healing
  • Silicone rubber

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