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Artículo
State-of-the-Art Using Bibliometric Analysis of Wind-Speed and -Power Forecasting Methods Applied in Power Systems
Autor/es | Lagos, Ana
Caicedo, Joaquín E. Coria, Gustavo Romero Quete, Andrés Martínez, Maximiliano Suvire, Gastón Riquelme Santos, Jesús Manuel |
Departamento | Universidad de Sevilla. Departamento de Ingeniería Eléctrica |
Fecha de publicación | 2022-09 |
Fecha de depósito | 2023-03-20 |
Publicado en |
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Resumen | The integration of wind energy into power systems has intensified as a result of the urgency for global energy transition. This requires more accurate forecasting techniques that can capture the variability of the wind ... The integration of wind energy into power systems has intensified as a result of the urgency for global energy transition. This requires more accurate forecasting techniques that can capture the variability of the wind resource to achieve better operative performance of power systems. This paper presents an exhaustive review of the state-of-the-art of wind-speed and -power forecasting models for wind turbines located in different segments of power systems, i.e., in large wind farms, distributed generation, microgrids, and micro-wind turbines installed in residences and buildings. This review covers forecasting models based on statistical and physical, artificial intelligence, and hybrid methods, with deterministic or probabilistic approaches. The literature review is carried out through a bibliometric analysis using VOSviewer and Pajek software. A discussion of the results is carried out, taking as the main approach the forecast time horizon of the models to identify their applications. The trends indicate a predominance of hybrid forecast models for the analysis of power systems, especially for those with high penetration of wind power. Finally, it is determined that most of the papers analyzed belong to the very short-term horizon, which indicates that the interest of researchers is in this time horizon. |
Agencias financiadoras | Deutscher Akademischer Austauschdienst (DAAD) Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET) CYTED Ciencia y Tecnología para el Desarrollo CERVERA program for Outstanding Research Centers Universidad Nacional de San Juan Secretaría de Ciencia, Tecnología e Innovación del Distrito Federal (SECITI) Junta de Andalucía |
Identificador del proyecto | 718RT0564
CER-20191019 PDTS 2020-2022 PYC20 RE 078 USE |
Cita | Lagos, A., Caicedo, J.E., Coria, G., Romero Quete, A., Martínez, M., Suvire, G. y Riquelme Santos, J.M. (2022). State-of-the-Art Using Bibliometric Analysis of Wind-Speed and -Power Forecasting Methods Applied in Power Systems. Energies, 15 (18), 6545. https://doi.org/10.3390/en15186545. |
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