dc.creatorTaveiros, Filipe Emanuel Vieira
dc.creatorBarros, Luciano Sales
dc.creatorCosta, Flávio Bezerra
dc.date2020-08-12T20:12:06Z
dc.date2020-08-12T20:12:06Z
dc.date2018-07-16
dc.identifierTAVEIROS, F.E.V.; BARROS, L.S.; COSTA, F.B.. Heightened state-feedback predictive control for DFIG-based wind turbines to enhance its LVRT performance. International Journal of Electrical Power & Energy Systems, [s.l.], v. 104, p. 943-956, jan. 2019. Disponível em: https://www.sciencedirect.com/science/article/abs/pii/S0142061518309670?via%3Dihub. Acesso em: 08 ago. 2020. https://doi.org/10.1016/j.ijepes.2018.07.028
dc.identifier0142-0615
dc.identifierhttps://repositorio.ufrn.br/jspui/handle/123456789/29806
dc.identifier10.1016/j.ijepes.2018.07.028
dc.descriptionThis paper investigates the response to grid disturbances of the wind energy conversion system based on the doubly fed induction generator (DFIG-based WECS). It is proposed a new control termed as heightened statefeedback control structure (HSFC) with predictive behavior to regulate the rotor current loops, which is able to effectively counteract the back electromotive force surge oscillating dynamics that occur in the event of a disturbance in the grid voltage. The proposed method is able to mitigate oscillations in DFIG currents exempting the need to use low voltage ride-through current-modify (LVRT-CM) strategies during intermediate symmetrical and asymmetrical voltage sags or during the voltage recovery process, while provide the DFIG to contribute active and reactive current featuring bounded torque oscillations. During severe faults, the proposed structure is able to effectively track the required post-fault rotor current references as demanded by LVRT-CM, which allows the DFIG to ride-through the fault with constrained currents and torque. The proposed structure also employs a novel flux damping technique which accentuate the rotor d-axis current in order to significantly reduce stator flux settling time after faults, while the torque minimally oscillates during post-fault recovery. Real-time digital simulations and experimental results considering symmetrical and asymmetrical voltage sags due to faults show the proposed solutions advantages over classical and previous strategies
dc.languageen
dc.publisherElsevier
dc.subjectDoubly fed induction generator
dc.subjectGrid unbalances
dc.subjectLow voltage ride-through
dc.subjectState-feedback
dc.subjectReal time simulation
dc.titleHeightened state-feedback predictive control for DFIG-based wind turbines to enhance its LVRT performance
dc.typearticle


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