A Portable System for the Evaluation of the Degree of Pollution of Transmission Line Insulators

Surface pollution is a major cause of partial discharges in high voltage insulators in coastal cities, leading to degradation of their surface and accelerating their aging process, which may cause visible arcing, flashovers and system faults. Thus, this work provides a methodology for the assessment...

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Main Authors: Lucas de Paula Santos Petri, Emanuel Antonio Moutinho, Rondinele Pinheiro Silva, Renato Massoni Capelini, Rogério Salustiano, Guilherme Martinez Figueiredo Ferraz, Estácio Tavares Wanderley Neto, Jansen Paula Villibor, Suzana Silva Pinto
Format: Article
Language:English
Published: MDPI AG 2020-12-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/13/24/6625
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spelling doaj-de8389018a694b1fb47892f6d9dc617d2020-12-16T00:04:35ZengMDPI AGEnergies1996-10732020-12-01136625662510.3390/en13246625A Portable System for the Evaluation of the Degree of Pollution of Transmission Line InsulatorsLucas de Paula Santos Petri0Emanuel Antonio Moutinho1Rondinele Pinheiro Silva2Renato Massoni Capelini3Rogério Salustiano4Guilherme Martinez Figueiredo Ferraz5Estácio Tavares Wanderley Neto6Jansen Paula Villibor7Suzana Silva Pinto8High Voltage Laboratory, Federal University of Itajubá—LAT-EFEI, Itajubá (MG) 37500-903, BrazilEquatorial Energia, São Luís (MA) 65070-900, BrazilEquatorial Energia, São Luís (MA) 65070-900, BrazilHVEX, Itajubá (MG) 37502-508, BrazilHVEX, Itajubá (MG) 37502-508, BrazilHVEX, Itajubá (MG) 37502-508, BrazilHigh Voltage Laboratory, Federal University of Itajubá—LAT-EFEI, Itajubá (MG) 37500-903, BrazilHigh Voltage Laboratory, Federal University of Itajubá—LAT-EFEI, Itajubá (MG) 37500-903, BrazilHigh Voltage Laboratory, Federal University of Itajubá—LAT-EFEI, Itajubá (MG) 37500-903, BrazilSurface pollution is a major cause of partial discharges in high voltage insulators in coastal cities, leading to degradation of their surface and accelerating their aging process, which may cause visible arcing, flashovers and system faults. Thus, this work provides a methodology for the assessment of the condition of insulators based on an instrument which generates a severity degree to help the electric utility team schedule maintenance routines for the structures that really need it. The instrument uses a Raspberry Pi board as the processing core, a PicoScope oscilloscope for the data acquisition and an antenna as a partial discharge sensor. The algorithms are implemented in Python, and use artificial intelligence tools, such as a convolutional network and a fuzzy inference system. Laboratory test methods for the simulation of the field pollution conditions were successfully used for the validation of the instrument, which showed a good correlation between the pollution level and the severity degree generated. In addition to that, field collected data were also used for the evaluation of the proposed severity degree, which is demonstrated to be consistent when compared with the utility’s reports and the history of the selected areas from where data were collected.https://www.mdpi.com/1996-1073/13/24/6625partial dischargeshigh voltage insulatorsfault diagnosismachine learningconvolutional neural networksfuzzy inference system
collection DOAJ
language English
format Article
sources DOAJ
author Lucas de Paula Santos Petri
Emanuel Antonio Moutinho
Rondinele Pinheiro Silva
Renato Massoni Capelini
Rogério Salustiano
Guilherme Martinez Figueiredo Ferraz
Estácio Tavares Wanderley Neto
Jansen Paula Villibor
Suzana Silva Pinto
spellingShingle Lucas de Paula Santos Petri
Emanuel Antonio Moutinho
Rondinele Pinheiro Silva
Renato Massoni Capelini
Rogério Salustiano
Guilherme Martinez Figueiredo Ferraz
Estácio Tavares Wanderley Neto
Jansen Paula Villibor
Suzana Silva Pinto
A Portable System for the Evaluation of the Degree of Pollution of Transmission Line Insulators
Energies
partial discharges
high voltage insulators
fault diagnosis
machine learning
convolutional neural networks
fuzzy inference system
author_facet Lucas de Paula Santos Petri
Emanuel Antonio Moutinho
Rondinele Pinheiro Silva
Renato Massoni Capelini
Rogério Salustiano
Guilherme Martinez Figueiredo Ferraz
Estácio Tavares Wanderley Neto
Jansen Paula Villibor
Suzana Silva Pinto
author_sort Lucas de Paula Santos Petri
title A Portable System for the Evaluation of the Degree of Pollution of Transmission Line Insulators
title_short A Portable System for the Evaluation of the Degree of Pollution of Transmission Line Insulators
title_full A Portable System for the Evaluation of the Degree of Pollution of Transmission Line Insulators
title_fullStr A Portable System for the Evaluation of the Degree of Pollution of Transmission Line Insulators
title_full_unstemmed A Portable System for the Evaluation of the Degree of Pollution of Transmission Line Insulators
title_sort portable system for the evaluation of the degree of pollution of transmission line insulators
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2020-12-01
description Surface pollution is a major cause of partial discharges in high voltage insulators in coastal cities, leading to degradation of their surface and accelerating their aging process, which may cause visible arcing, flashovers and system faults. Thus, this work provides a methodology for the assessment of the condition of insulators based on an instrument which generates a severity degree to help the electric utility team schedule maintenance routines for the structures that really need it. The instrument uses a Raspberry Pi board as the processing core, a PicoScope oscilloscope for the data acquisition and an antenna as a partial discharge sensor. The algorithms are implemented in Python, and use artificial intelligence tools, such as a convolutional network and a fuzzy inference system. Laboratory test methods for the simulation of the field pollution conditions were successfully used for the validation of the instrument, which showed a good correlation between the pollution level and the severity degree generated. In addition to that, field collected data were also used for the evaluation of the proposed severity degree, which is demonstrated to be consistent when compared with the utility’s reports and the history of the selected areas from where data were collected.
topic partial discharges
high voltage insulators
fault diagnosis
machine learning
convolutional neural networks
fuzzy inference system
url https://www.mdpi.com/1996-1073/13/24/6625
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