Investigation on Electrical, Thermal, and Mechanical Properties of Silicone Rubber ATH Nanocomposites

In the present study, investigations have been carried out by choosing the nano-sized ATH (30–50 nm) particles as filler content in silicone rubber to acquire a deep insight to understand the use of nano ATH fillers in silicone rubber on its performance, to use it as insulation structure...

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Main Authors: J. Manoj Dhivakar, Ramanujam Sarathi, Stefan Kornhuber
Format: Article
Language:English
Published: IEEE 2022-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9875278/
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author J. Manoj Dhivakar
Ramanujam Sarathi
Stefan Kornhuber
author_facet J. Manoj Dhivakar
Ramanujam Sarathi
Stefan Kornhuber
author_sort J. Manoj Dhivakar
collection DOAJ
description In the present study, investigations have been carried out by choosing the nano-sized ATH (30–50 nm) particles as filler content in silicone rubber to acquire a deep insight to understand the use of nano ATH fillers in silicone rubber on its performance, to use it as insulation structure as an outdoor insulator. Variation in the surface condition of silicone rubber nanocomposites due to corona aging and the recovery characteristics analysis carried out through contact angle measurement. Nano ATH added in silicone rubber, up to 3 wt% of filler, shows increased dielectric constant with less loss factor. Water droplet-initiated discharges on silicone rubber nano ATH composites under DC voltage measured using UHF technique and the damage caused zone is analyzed through AFM studies and by surface potential measurement, which indicates higher surface roughness and increased charge trap depth. It is observed that negative DC voltage has higher CIV followed by positive DC and AC voltage. Laser Induced breakdown spectroscopy (LIBS) studies show a direct correlation between plasma temperature and material surface hardness. Also, on laser shining on the surface of the specimen, its temperature was measured on the backside of the specimen through thermal imaging confirming increased diffusivity of temperature. Laser flash analysis shows a direct correlation between filler content in base polymer and thermal conductivity and diffusivity. Higher storage modulus and activation energies measured from the dynamic mechanical analysis indicate the significance of prepared composites as an excellent mechanical support structure for the power system network.
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spelling doaj.art-f661ded5a9d348ba8d37c9dc54d3a7a12022-12-22T04:04:19ZengIEEEIEEE Access2169-35362022-01-0110940409405010.1109/ACCESS.2022.32040289875278Investigation on Electrical, Thermal, and Mechanical Properties of Silicone Rubber ATH NanocompositesJ. Manoj Dhivakar0Ramanujam Sarathi1https://orcid.org/0000-0002-1353-9588Stefan Kornhuber2Department of Electrical Engineering, IIT Madras, Chennai, IndiaDepartment of Electrical Engineering, IIT Madras, Chennai, IndiaDepartment of High Voltage Engineering, University of Applied Sciences Zittau/Goerlitz, Zittau, GermanyIn the present study, investigations have been carried out by choosing the nano-sized ATH (30–50 nm) particles as filler content in silicone rubber to acquire a deep insight to understand the use of nano ATH fillers in silicone rubber on its performance, to use it as insulation structure as an outdoor insulator. Variation in the surface condition of silicone rubber nanocomposites due to corona aging and the recovery characteristics analysis carried out through contact angle measurement. Nano ATH added in silicone rubber, up to 3 wt% of filler, shows increased dielectric constant with less loss factor. Water droplet-initiated discharges on silicone rubber nano ATH composites under DC voltage measured using UHF technique and the damage caused zone is analyzed through AFM studies and by surface potential measurement, which indicates higher surface roughness and increased charge trap depth. It is observed that negative DC voltage has higher CIV followed by positive DC and AC voltage. Laser Induced breakdown spectroscopy (LIBS) studies show a direct correlation between plasma temperature and material surface hardness. Also, on laser shining on the surface of the specimen, its temperature was measured on the backside of the specimen through thermal imaging confirming increased diffusivity of temperature. Laser flash analysis shows a direct correlation between filler content in base polymer and thermal conductivity and diffusivity. Higher storage modulus and activation energies measured from the dynamic mechanical analysis indicate the significance of prepared composites as an excellent mechanical support structure for the power system network.https://ieeexplore.ieee.org/document/9875278/Silicone rubbernano-ATHsurface potentialthermal imagesAFMDRS
spellingShingle J. Manoj Dhivakar
Ramanujam Sarathi
Stefan Kornhuber
Investigation on Electrical, Thermal, and Mechanical Properties of Silicone Rubber ATH Nanocomposites
IEEE Access
Silicone rubber
nano-ATH
surface potential
thermal images
AFM
DRS
title Investigation on Electrical, Thermal, and Mechanical Properties of Silicone Rubber ATH Nanocomposites
title_full Investigation on Electrical, Thermal, and Mechanical Properties of Silicone Rubber ATH Nanocomposites
title_fullStr Investigation on Electrical, Thermal, and Mechanical Properties of Silicone Rubber ATH Nanocomposites
title_full_unstemmed Investigation on Electrical, Thermal, and Mechanical Properties of Silicone Rubber ATH Nanocomposites
title_short Investigation on Electrical, Thermal, and Mechanical Properties of Silicone Rubber ATH Nanocomposites
title_sort investigation on electrical thermal and mechanical properties of silicone rubber ath nanocomposites
topic Silicone rubber
nano-ATH
surface potential
thermal images
AFM
DRS
url https://ieeexplore.ieee.org/document/9875278/
work_keys_str_mv AT jmanojdhivakar investigationonelectricalthermalandmechanicalpropertiesofsiliconerubberathnanocomposites
AT ramanujamsarathi investigationonelectricalthermalandmechanicalpropertiesofsiliconerubberathnanocomposites
AT stefankornhuber investigationonelectricalthermalandmechanicalpropertiesofsiliconerubberathnanocomposites