Modified multimachine power system design with DFIG-WECS and damping controller

Rotor angle stability, which involves electromechanical oscillation damping and control, is very important in maintaining the stability of modern power grid systems. Renewable energy sources like wind energy are undergoing massive integration into modern power grid systems to meet energy demands and...

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Main Authors: Sabo, Aliyu, Odoh, Theophilus Ebuka, Veerapandiyan, Veerasamy, Abdul Wahab, Noor Izzri
Format: Article
Language:English
Published: Multidisciplinary Digital Publishing Institute (MDPI) 2024
Online Access:http://psasir.upm.edu.my/id/eprint/111505/1/energies-17-01841-v2%20%281%29.pdf
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author Sabo, Aliyu
Odoh, Theophilus Ebuka
Veerapandiyan, Veerasamy
Abdul Wahab, Noor Izzri
author_facet Sabo, Aliyu
Odoh, Theophilus Ebuka
Veerapandiyan, Veerasamy
Abdul Wahab, Noor Izzri
author_sort Sabo, Aliyu
collection UPM
description Rotor angle stability, which involves electromechanical oscillation damping and control, is very important in maintaining the stability of modern power grid systems. Renewable energy sources like wind energy are undergoing massive integration into modern power grid systems to meet energy demands and decarbonize power grid systems of carbon emissions from fossil fuel generators. To enable increased integration of wind renewable energy sources, precise models are needed for research and analytical purposes. Wind renewable energy is generated through a wind energy conversion system (WECS); one such conversion system is the doubly fed induction generator (DFIG) system. In this study, a precise model of a DFIG-WECS was modeled and integrated into the IEEE’s two-area Kundur power test system, which represents the available power grid system, and is also a multimachine power system using the Matlab/Simulink 2023 software. A damping controller known as the power system stabilizer (PSS), whose optimal parameters were obtained using artificial eco-system optimization (AEO), was also incorporated into the integrated power grid system to control and damp electromechanical oscillations. The results showed that the PSS damping controller effectively damped electromechanical oscillations in the integrated power grid system.
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spelling upm.eprints-1115052024-08-04T10:31:05Z http://psasir.upm.edu.my/id/eprint/111505/ Modified multimachine power system design with DFIG-WECS and damping controller Sabo, Aliyu Odoh, Theophilus Ebuka Veerapandiyan, Veerasamy Abdul Wahab, Noor Izzri Rotor angle stability, which involves electromechanical oscillation damping and control, is very important in maintaining the stability of modern power grid systems. Renewable energy sources like wind energy are undergoing massive integration into modern power grid systems to meet energy demands and decarbonize power grid systems of carbon emissions from fossil fuel generators. To enable increased integration of wind renewable energy sources, precise models are needed for research and analytical purposes. Wind renewable energy is generated through a wind energy conversion system (WECS); one such conversion system is the doubly fed induction generator (DFIG) system. In this study, a precise model of a DFIG-WECS was modeled and integrated into the IEEE’s two-area Kundur power test system, which represents the available power grid system, and is also a multimachine power system using the Matlab/Simulink 2023 software. A damping controller known as the power system stabilizer (PSS), whose optimal parameters were obtained using artificial eco-system optimization (AEO), was also incorporated into the integrated power grid system to control and damp electromechanical oscillations. The results showed that the PSS damping controller effectively damped electromechanical oscillations in the integrated power grid system. Multidisciplinary Digital Publishing Institute (MDPI) 2024-04-11 Article PeerReviewed text en http://psasir.upm.edu.my/id/eprint/111505/1/energies-17-01841-v2%20%281%29.pdf Sabo, Aliyu and Odoh, Theophilus Ebuka and Veerapandiyan, Veerasamy and Abdul Wahab, Noor Izzri (2024) Modified multimachine power system design with DFIG-WECS and damping controller. Energies, 17 (8). pp. 1-22. ISSN 1996-1073 https://www.mdpi.com/1996-1073/17/8/1841 10.3390/en17081841
spellingShingle Sabo, Aliyu
Odoh, Theophilus Ebuka
Veerapandiyan, Veerasamy
Abdul Wahab, Noor Izzri
Modified multimachine power system design with DFIG-WECS and damping controller
title Modified multimachine power system design with DFIG-WECS and damping controller
title_full Modified multimachine power system design with DFIG-WECS and damping controller
title_fullStr Modified multimachine power system design with DFIG-WECS and damping controller
title_full_unstemmed Modified multimachine power system design with DFIG-WECS and damping controller
title_short Modified multimachine power system design with DFIG-WECS and damping controller
title_sort modified multimachine power system design with dfig wecs and damping controller
url http://psasir.upm.edu.my/id/eprint/111505/1/energies-17-01841-v2%20%281%29.pdf
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