Detalhes
Nome
Tatiana GuedesCargo
InvestigadorDesde
04 novembro 2022
Nacionalidade
BrasilCentro
Sistemas de EnergiaContactos
+351222094000
tatiana.guedes@inesctec.pt
2025
Autores
Klyagina O.; Silva C.G.; Silva A.S.; Guedes T.; Andrade J.R.; Bessa R.J.;
Publicação
2025 IEEE Kiel Powertech Powertech 2025
Abstract
A fast response to faults in large-scale photovoltaic power plants (PVPPs), which can occur on hundreds of components like photovoltaic panels and inverters, is fundamental for maximizing energy generation and reliable system operation. This work proposes using a Graph Neural Network (GNN) combined with a digital twin for synthetic fault data scenario generation for fault location in PVPPs. It shows that GNN can adapt to system changes without requiring model retraining, thus offering a scalable solution for the real operating PVPPs, where some parts of the system may be disconnected for maintenance. The results for a real PVPP show the GNN outperforms baseline models, especially in larger topologies, achieving up to twice the accuracy in a fault location task. The GNN's adaptability to topology changes was tested on the simulated reconfigured systems. A decrease in performance was observed, and its value depends on the complexity of the original training topology. It can be mitigated by using several system reconfigurations in the training set.
2022
Autores
Vera, EG; Canizares, CA; Pirnia, M; Guedes, TP; Melo, JD;
Publicação
IEEE Transactions on Smart Grid
Abstract
2021
Autores
Palate, BO; Guedes, TP; Grilo-Pavani, A; Padilha-Feltrin, A; Melo, JD;
Publicação
International Journal of Electrical Power & Energy Systems
Abstract
2019
Autores
Camilo, JC; Guedes, T; Fernandes, DA; Melo, J; Costa, F; Sguarezi Filho, AJ;
Publicação
Renewable Energy
Abstract
2017
Autores
Fernandes, D; Almeida, R; Guedes, T; Sguarezi Filho, A; Costa, F;
Publicação
Electric Power Systems Research
Abstract
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