Cargando…

Surface Recovery Investigation of Silicone Rubber Composites for Outdoor Electrical Insulation under Accelerated Temperature and Humidity

Degradation of silicon rubber due to heat and humidity affect its performance in outdoor applications. To analyze the effects of high temperature and humidity on room temperature vulcanized (RTV) silicone rubber (SiR) and its composites, this study was performed. Five different sample compositions i...

Descripción completa

Detalles Bibliográficos
Autores principales: Raza, M. Hassan, Khattak, Abraiz, Ali, Asghar, Butt, Safi Ullah, Iqbal, Bilal, Ulasyar, Abasin, Alahmadi, Ahmad Aziz, Ullah, Nasim, Khan, Adam
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8473404/
https://www.ncbi.nlm.nih.gov/pubmed/34577924
http://dx.doi.org/10.3390/polym13183024
_version_ 1784574983437025280
author Raza, M. Hassan
Khattak, Abraiz
Ali, Asghar
Butt, Safi Ullah
Iqbal, Bilal
Ulasyar, Abasin
Alahmadi, Ahmad Aziz
Ullah, Nasim
Khan, Adam
author_facet Raza, M. Hassan
Khattak, Abraiz
Ali, Asghar
Butt, Safi Ullah
Iqbal, Bilal
Ulasyar, Abasin
Alahmadi, Ahmad Aziz
Ullah, Nasim
Khan, Adam
author_sort Raza, M. Hassan
collection PubMed
description Degradation of silicon rubber due to heat and humidity affect its performance in outdoor applications. To analyze the effects of high temperature and humidity on room temperature vulcanized (RTV) silicone rubber (SiR) and its composites, this study was performed. Five different sample compositions including neat silicone rubber (nSiR), microcomposites (15 wt% silica(SMC 15% SiO(2)) and 15 wt% ATH(SMC 15% ATH), nanocomposite (2.5 wt% silica(SNC 2.5% SiO(2)) and hybrid composite (10 wt% micro alumina trihydrate with 2 wt% nano silica(SMNC 10% ATH 2% SiO(2)) were prepared and subjected to 70 ˚C temperature and 80% relative humidity in an environmental chamber for 120 h. Contact angle, optical microscopy and Fourier transform infrared (FTIR) spectroscopy were employed to analyze the recovery properties before and after applying stresses. Different trends of degradation and recovery were observed for different concentrations of composites. Addition of fillers improved the overall performance of composites and SMC 15% ATH composite performed better than other composites. For high temperature and humidity, the ATH-based microcomposite was recommended over silica due to its superior thermal retardation properties of ATH. It has been proved that ATH filler is able to withstand high temperature and humidity.
format Online
Article
Text
id pubmed-8473404
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-84734042021-09-28 Surface Recovery Investigation of Silicone Rubber Composites for Outdoor Electrical Insulation under Accelerated Temperature and Humidity Raza, M. Hassan Khattak, Abraiz Ali, Asghar Butt, Safi Ullah Iqbal, Bilal Ulasyar, Abasin Alahmadi, Ahmad Aziz Ullah, Nasim Khan, Adam Polymers (Basel) Article Degradation of silicon rubber due to heat and humidity affect its performance in outdoor applications. To analyze the effects of high temperature and humidity on room temperature vulcanized (RTV) silicone rubber (SiR) and its composites, this study was performed. Five different sample compositions including neat silicone rubber (nSiR), microcomposites (15 wt% silica(SMC 15% SiO(2)) and 15 wt% ATH(SMC 15% ATH), nanocomposite (2.5 wt% silica(SNC 2.5% SiO(2)) and hybrid composite (10 wt% micro alumina trihydrate with 2 wt% nano silica(SMNC 10% ATH 2% SiO(2)) were prepared and subjected to 70 ˚C temperature and 80% relative humidity in an environmental chamber for 120 h. Contact angle, optical microscopy and Fourier transform infrared (FTIR) spectroscopy were employed to analyze the recovery properties before and after applying stresses. Different trends of degradation and recovery were observed for different concentrations of composites. Addition of fillers improved the overall performance of composites and SMC 15% ATH composite performed better than other composites. For high temperature and humidity, the ATH-based microcomposite was recommended over silica due to its superior thermal retardation properties of ATH. It has been proved that ATH filler is able to withstand high temperature and humidity. MDPI 2021-09-07 /pmc/articles/PMC8473404/ /pubmed/34577924 http://dx.doi.org/10.3390/polym13183024 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Raza, M. Hassan
Khattak, Abraiz
Ali, Asghar
Butt, Safi Ullah
Iqbal, Bilal
Ulasyar, Abasin
Alahmadi, Ahmad Aziz
Ullah, Nasim
Khan, Adam
Surface Recovery Investigation of Silicone Rubber Composites for Outdoor Electrical Insulation under Accelerated Temperature and Humidity
title Surface Recovery Investigation of Silicone Rubber Composites for Outdoor Electrical Insulation under Accelerated Temperature and Humidity
title_full Surface Recovery Investigation of Silicone Rubber Composites for Outdoor Electrical Insulation under Accelerated Temperature and Humidity
title_fullStr Surface Recovery Investigation of Silicone Rubber Composites for Outdoor Electrical Insulation under Accelerated Temperature and Humidity
title_full_unstemmed Surface Recovery Investigation of Silicone Rubber Composites for Outdoor Electrical Insulation under Accelerated Temperature and Humidity
title_short Surface Recovery Investigation of Silicone Rubber Composites for Outdoor Electrical Insulation under Accelerated Temperature and Humidity
title_sort surface recovery investigation of silicone rubber composites for outdoor electrical insulation under accelerated temperature and humidity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8473404/
https://www.ncbi.nlm.nih.gov/pubmed/34577924
http://dx.doi.org/10.3390/polym13183024
work_keys_str_mv AT razamhassan surfacerecoveryinvestigationofsiliconerubbercompositesforoutdoorelectricalinsulationunderacceleratedtemperatureandhumidity
AT khattakabraiz surfacerecoveryinvestigationofsiliconerubbercompositesforoutdoorelectricalinsulationunderacceleratedtemperatureandhumidity
AT aliasghar surfacerecoveryinvestigationofsiliconerubbercompositesforoutdoorelectricalinsulationunderacceleratedtemperatureandhumidity
AT buttsafiullah surfacerecoveryinvestigationofsiliconerubbercompositesforoutdoorelectricalinsulationunderacceleratedtemperatureandhumidity
AT iqbalbilal surfacerecoveryinvestigationofsiliconerubbercompositesforoutdoorelectricalinsulationunderacceleratedtemperatureandhumidity
AT ulasyarabasin surfacerecoveryinvestigationofsiliconerubbercompositesforoutdoorelectricalinsulationunderacceleratedtemperatureandhumidity
AT alahmadiahmadaziz surfacerecoveryinvestigationofsiliconerubbercompositesforoutdoorelectricalinsulationunderacceleratedtemperatureandhumidity
AT ullahnasim surfacerecoveryinvestigationofsiliconerubbercompositesforoutdoorelectricalinsulationunderacceleratedtemperatureandhumidity
AT khanadam surfacerecoveryinvestigationofsiliconerubbercompositesforoutdoorelectricalinsulationunderacceleratedtemperatureandhumidity