Intelligent fault detection system for microgrids

The dynamic features of microgrid operation, such as on-grid/off-grid operation mode, the intermittency of distributed generators, and its dynamic topology due to its ability to reconfigure itself, cause misfiring of conventional protection schemes. To solve this issue, adaptive protection schemes t...

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Detalles Bibliográficos
Autores: Cepeda, Cristian, Orozco-Henao, Cesar, Percybrooks, Winston, Pulgarín-Rivera, Juan Diego, Montoya, Oscar Danilo, Gil-González, Walter, Vélez, Juan Carlos
Tipo de recurso: artículo
Estado:Versión publicada
Fecha de publicación:2020
País:Colombia
Institución:Universidad Tecnológica de Bolívar
Repositorio:Repositorio Institucional UTB
Idioma:inglés
OAI Identifier:oai:repositorio.utb.edu.co:20.500.12585/9371
Acceso en línea:https://hdl.handle.net/20.500.12585/9371
https://www.mdpi.com/1996-1073/13/5/1223
Access Level:acceso abierto
Palabra clave:Fault detector
Microgrid
Machine learning-based techniques
Descripción
Sumario:The dynamic features of microgrid operation, such as on-grid/off-grid operation mode, the intermittency of distributed generators, and its dynamic topology due to its ability to reconfigure itself, cause misfiring of conventional protection schemes. To solve this issue, adaptive protection schemes that use robust communication systems have been proposed for the protection of microgrids. However, the cost of this solution is significantly high. This paper presented an intelligent fault detection (FD) system for microgrids on the basis of local measurements and machine learning (ML) techniques. This proposed FD system provided a smart level to intelligent electronic devices (IED) installed on the microgrid through the integration of ML models. This allowed each IED to autonomously determine if a fault occurred on the microgrid, eliminating the requirement of robust communication infrastructure between IEDs for microgrid protection. Additionally, the proposed system presented a methodology composed of four stages, which allowed its implementation in any microgrid. In addition, each stage provided important recommendations for the proper use of ML techniques on the protection problem. The proposed FD system was validated on the modified IEEE 13-nodes test feeder. This took into consideration typical features of microgrids such as the load imbalance, reconfiguration, and off-grid/on-grid operation modes. The results demonstrated the flexibility and simplicity of the FD system in determining the best accuracy performance among several ML models. The ease of design’s implementation, formulation of parameters, and promising test results indicated the potential for real-life applications.