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An Open-Source Tool-Box for Asset Management based on the asset condition for the Power System

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Fecha
2025-12-31
Autor
Rajora, GopaL Lal
Sanz Bobi, Miguel Ángel
Mateo Domingo, Carlos
Bertling Tjemberg, Lina
Estado
info:eu-repo/semantics/publishedVersion
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Resumen
 
 
This Study introduces an open-source toolbox for asset management in power systems developed under the European ATTEST project. This paper focuses on presenting an open-source toolbox for Transmission and Distribution System Operators (TSOs and DSOs) to improve the reliability and efficiency of power networks, including a solution to the difficulties faced by the power industry, such as the aging infrastructure and the growing need for renewable energy integration The toolbox uses predictive analytics and machine learning to evaluate the health of assets, enhance maintenance plans, and guarantee efficient resource distribution. It evaluates the condition of power grid assets through clustering (K-means, SOM) and reinforcement learning (Q-learning), providing actionable insights for improving asset management. This approach allows TSOs and DSOs to adopt proactive maintenance strategies, reducing the risk of failures, minimizing downtime, and extending the lifespan of critical infrastructure. The toolbox provides actionable insights for planning maintenance strategies and optimizing resource allocation. Scalability tests were conducted using a synthetic power grid of 600 transformers alongside real-world data from five European electrical companies. Due to space constraints, only the results from 92 transformers. This research contributes to achieving sustainable power systems and supporting the energy transition by focusing on intelligent asset management.
 
URI
https:doi.org10.1109ACCESS.2025.3551663
http://hdl.handle.net/11531/101235
An Open-Source Tool-Box for Asset Management based on the asset condition for the Power System
Tipo de Actividad
Artículos en revistas
ISSN
2169-3536
Materias/ categorías / ODS
Instituto de Investigación Tecnológica (IIT)
Palabras Clave

ATTEST, Asset Health Assessment, Condition Monitoring, Power System Asset Management, Predictive Maintenance, Reinforcement Learning, Machine Learning, Data-Driven Insights.
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Repositorio de la Universidad Pontificia Comillas copyright © 2015  Desarrollado con DSpace Software
Contacto | Sugerencias