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Investigation of 9000 hours multi-stress aging effects on High-Temperature Vulcanized Silicone Rubber with silica (nano/micro) filler hybrid composite insulator

Degradation in the polymeric insulators is caused due to the environmental stresses. The main aim of this paper is to explore the improved aging characteristics of hybrid samples by adding nano/micro silica in High Temperature Vulcanized Silicone Rubber (HTV-SiR) under long term accelerated aging co...

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Autores principales: Rashid, Arooj, Saleem, Jawad, Amin, Muhammad, Ali, Sahibzada Muhammad, Khan, Aftab Ahmad, Qureshi, Muhammad Bilal, Ali, Sara, Dancey, Darren, Nawaz, Raheel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8318273/
https://www.ncbi.nlm.nih.gov/pubmed/34319996
http://dx.doi.org/10.1371/journal.pone.0253372
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author Rashid, Arooj
Saleem, Jawad
Amin, Muhammad
Ali, Sahibzada Muhammad
Khan, Aftab Ahmad
Qureshi, Muhammad Bilal
Ali, Sara
Dancey, Darren
Nawaz, Raheel
author_facet Rashid, Arooj
Saleem, Jawad
Amin, Muhammad
Ali, Sahibzada Muhammad
Khan, Aftab Ahmad
Qureshi, Muhammad Bilal
Ali, Sara
Dancey, Darren
Nawaz, Raheel
author_sort Rashid, Arooj
collection PubMed
description Degradation in the polymeric insulators is caused due to the environmental stresses. The main aim of this paper is to explore the improved aging characteristics of hybrid samples by adding nano/micro silica in High Temperature Vulcanized Silicone Rubber (HTV-SiR) under long term accelerated aging conditions for 9000 hours. As HTV-SiR is unable to sustain environmental stresses for a long time, thus a long term accelerated aging behavior is an important phenomenon to be considered for field application. The aging characteristics of nano/micro filled HTV-SiR are analyzed by using techniques such as Scanning Electron Microscopy (SEM), Leakage Current (LC), Fourier Transform Infrared Microscopy (FTIR), Hydrophobicity Classification (HC), and breakdown strength for the aging time of 9000 hours. FTIR and leakage currents are measured after every cycle. All the co-filled samples revealed escalated aging characteristics as compared to the neat sample except the SN8 sample (8% nano-silica+20% micro-silica) after 9000 hours of aging. The highest loading of 6% and 8% nano-silica with 20% micro-silica do not contribute to the improved performance when compared with the neat and hybrid samples. However, from the critical experimental analysis, it is deduced that SN2 sample (2% nano-silica+20% micro-silica) is highly resistant to the long term accelerated aging conditions. SN2 has no cracks, lower loss percentages in the important FTIR absorption peaks, higher breakdown strength and superior HC after aging as compared to the unfilled and hybrid samples.
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spelling pubmed-83182732021-07-31 Investigation of 9000 hours multi-stress aging effects on High-Temperature Vulcanized Silicone Rubber with silica (nano/micro) filler hybrid composite insulator Rashid, Arooj Saleem, Jawad Amin, Muhammad Ali, Sahibzada Muhammad Khan, Aftab Ahmad Qureshi, Muhammad Bilal Ali, Sara Dancey, Darren Nawaz, Raheel PLoS One Research Article Degradation in the polymeric insulators is caused due to the environmental stresses. The main aim of this paper is to explore the improved aging characteristics of hybrid samples by adding nano/micro silica in High Temperature Vulcanized Silicone Rubber (HTV-SiR) under long term accelerated aging conditions for 9000 hours. As HTV-SiR is unable to sustain environmental stresses for a long time, thus a long term accelerated aging behavior is an important phenomenon to be considered for field application. The aging characteristics of nano/micro filled HTV-SiR are analyzed by using techniques such as Scanning Electron Microscopy (SEM), Leakage Current (LC), Fourier Transform Infrared Microscopy (FTIR), Hydrophobicity Classification (HC), and breakdown strength for the aging time of 9000 hours. FTIR and leakage currents are measured after every cycle. All the co-filled samples revealed escalated aging characteristics as compared to the neat sample except the SN8 sample (8% nano-silica+20% micro-silica) after 9000 hours of aging. The highest loading of 6% and 8% nano-silica with 20% micro-silica do not contribute to the improved performance when compared with the neat and hybrid samples. However, from the critical experimental analysis, it is deduced that SN2 sample (2% nano-silica+20% micro-silica) is highly resistant to the long term accelerated aging conditions. SN2 has no cracks, lower loss percentages in the important FTIR absorption peaks, higher breakdown strength and superior HC after aging as compared to the unfilled and hybrid samples. Public Library of Science 2021-07-28 /pmc/articles/PMC8318273/ /pubmed/34319996 http://dx.doi.org/10.1371/journal.pone.0253372 Text en © 2021 Rashid et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Rashid, Arooj
Saleem, Jawad
Amin, Muhammad
Ali, Sahibzada Muhammad
Khan, Aftab Ahmad
Qureshi, Muhammad Bilal
Ali, Sara
Dancey, Darren
Nawaz, Raheel
Investigation of 9000 hours multi-stress aging effects on High-Temperature Vulcanized Silicone Rubber with silica (nano/micro) filler hybrid composite insulator
title Investigation of 9000 hours multi-stress aging effects on High-Temperature Vulcanized Silicone Rubber with silica (nano/micro) filler hybrid composite insulator
title_full Investigation of 9000 hours multi-stress aging effects on High-Temperature Vulcanized Silicone Rubber with silica (nano/micro) filler hybrid composite insulator
title_fullStr Investigation of 9000 hours multi-stress aging effects on High-Temperature Vulcanized Silicone Rubber with silica (nano/micro) filler hybrid composite insulator
title_full_unstemmed Investigation of 9000 hours multi-stress aging effects on High-Temperature Vulcanized Silicone Rubber with silica (nano/micro) filler hybrid composite insulator
title_short Investigation of 9000 hours multi-stress aging effects on High-Temperature Vulcanized Silicone Rubber with silica (nano/micro) filler hybrid composite insulator
title_sort investigation of 9000 hours multi-stress aging effects on high-temperature vulcanized silicone rubber with silica (nano/micro) filler hybrid composite insulator
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8318273/
https://www.ncbi.nlm.nih.gov/pubmed/34319996
http://dx.doi.org/10.1371/journal.pone.0253372
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