Ensembled methodology for the comtrade analysis regarding medium voltage side in wind park

Descripción del Articulo

This research proposes a methodology for automated COMTRADE analysis using ensembled algorithms for fault analysis in medium voltage circuits, specifically for wind park feeders. Traditional fault detection methods face significant limitations, such as CT saturation and DC offset, underscoring the n...

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Detalles Bibliográficos
Autor: Arias Velasquez, Ricardo Manuel
Formato: artículo
Fecha de Publicación:2024
Institución:Universidad Tecnológica del Perú
Repositorio:UTP-Institucional
Lenguaje:inglés
OAI Identifier:oai:repositorio.utp.edu.pe:20.500.12867/14088
Enlace del recurso:https://hdl.handle.net/20.500.12867/14088
Nivel de acceso:acceso abierto
Materia:Comtrade
Oscillography
Event
https://purl.org/pe-repo/ocde/ford#2.11.03
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dc.title.es_PE.fl_str_mv Ensembled methodology for the comtrade analysis regarding medium voltage side in wind park
title Ensembled methodology for the comtrade analysis regarding medium voltage side in wind park
spellingShingle Ensembled methodology for the comtrade analysis regarding medium voltage side in wind park
Arias Velasquez, Ricardo Manuel
Comtrade
Oscillography
Event
https://purl.org/pe-repo/ocde/ford#2.11.03
title_short Ensembled methodology for the comtrade analysis regarding medium voltage side in wind park
title_full Ensembled methodology for the comtrade analysis regarding medium voltage side in wind park
title_fullStr Ensembled methodology for the comtrade analysis regarding medium voltage side in wind park
title_full_unstemmed Ensembled methodology for the comtrade analysis regarding medium voltage side in wind park
title_sort Ensembled methodology for the comtrade analysis regarding medium voltage side in wind park
author Arias Velasquez, Ricardo Manuel
author_facet Arias Velasquez, Ricardo Manuel
author_role author
dc.contributor.author.fl_str_mv Arias Velasquez, Ricardo Manuel
dc.subject.es_PE.fl_str_mv Comtrade
Oscillography
Event
topic Comtrade
Oscillography
Event
https://purl.org/pe-repo/ocde/ford#2.11.03
dc.subject.ocde.es_PE.fl_str_mv https://purl.org/pe-repo/ocde/ford#2.11.03
description This research proposes a methodology for automated COMTRADE analysis using ensembled algorithms for fault analysis in medium voltage circuits, specifically for wind park feeders. Traditional fault detection methods face significant limitations, such as CT saturation and DC offset, underscoring the need for improved approaches. The proposed methodology integrates Random Committee, XGBoost (XGB), and Light XGB algorithms, optimized through grid search, achieving an accuracy of 99.397 %. This ensemble approach significantly reduces classification errors, false positives, and false negatives compared to single algorithm methods. This research has the analysis of 3929 events for training and 829 fault events for test, it revealed a high correlation between current and fault spectra; the methodology demonstrated superior performance in fault location analysis, with terminal faults showing the most severe transient recovery voltage (TRV) peak values, while kilometer faults exhibited higher transient recovery restoration voltage growth rates. The fault location analysis was conducted by comparing simulation-derived overvoltage with standard TRV graphs, aligned with IEC 62271-100 standards. Circuit breakers exhibited higher TRV tolerance with lower fault currents. Terminal faults, particularly symmetrical three-phase faults, were identified as the most severe, typically occurring at peak TRV values. Its findings reduced classification errors, from 41 to 5 events, and decreased the false negative rate from 1.81 % to 0.24 % compared to Random Forest. Validation with virtual relays showed a reduction in RCE from 5.3 % to 0.63 %.
publishDate 2024
dc.date.accessioned.none.fl_str_mv 2025-10-28T19:48:54Z
dc.date.available.none.fl_str_mv 2025-10-28T19:48:54Z
dc.date.issued.fl_str_mv 2024
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dc.identifier.issn.none.fl_str_mv 2590-1230
dc.identifier.uri.none.fl_str_mv https://hdl.handle.net/20.500.12867/14088
dc.identifier.journal.es_PE.fl_str_mv Results in Engineering
dc.identifier.doi.none.fl_str_mv doi.org/10.1016/j.rineng.2024.102751
identifier_str_mv 2590-1230
Results in Engineering
doi.org/10.1016/j.rineng.2024.102751
url https://hdl.handle.net/20.500.12867/14088
dc.language.iso.es_PE.fl_str_mv eng
language eng
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dc.source.es_PE.fl_str_mv Repositorio Institucional - UTP
Universidad Tecnológica del Perú
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spelling Arias Velasquez, Ricardo Manuel2025-10-28T19:48:54Z2025-10-28T19:48:54Z20242590-1230https://hdl.handle.net/20.500.12867/14088Results in Engineeringdoi.org/10.1016/j.rineng.2024.102751This research proposes a methodology for automated COMTRADE analysis using ensembled algorithms for fault analysis in medium voltage circuits, specifically for wind park feeders. Traditional fault detection methods face significant limitations, such as CT saturation and DC offset, underscoring the need for improved approaches. The proposed methodology integrates Random Committee, XGBoost (XGB), and Light XGB algorithms, optimized through grid search, achieving an accuracy of 99.397 %. This ensemble approach significantly reduces classification errors, false positives, and false negatives compared to single algorithm methods. This research has the analysis of 3929 events for training and 829 fault events for test, it revealed a high correlation between current and fault spectra; the methodology demonstrated superior performance in fault location analysis, with terminal faults showing the most severe transient recovery voltage (TRV) peak values, while kilometer faults exhibited higher transient recovery restoration voltage growth rates. The fault location analysis was conducted by comparing simulation-derived overvoltage with standard TRV graphs, aligned with IEC 62271-100 standards. Circuit breakers exhibited higher TRV tolerance with lower fault currents. Terminal faults, particularly symmetrical three-phase faults, were identified as the most severe, typically occurring at peak TRV values. Its findings reduced classification errors, from 41 to 5 events, and decreased the false negative rate from 1.81 % to 0.24 % compared to Random Forest. 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