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dc.contributor.authorRicalde, Ricalde-
dc.contributor.authorCruz, Braulio J.-
dc.contributor.authorSánchez, Edgar N.-
dc.date.accessioned2013-04-15T23:48:59Z-
dc.date.available2013-04-15T23:48:59Z-
dc.date.issued2010-12-15-
dc.identifier.citationRevista Computación y Sistemas; Vol. 14 No. 2es
dc.identifier.issn1405-5546-
dc.identifier.urihttp://www.repositoriodigital.ipn.mx/handle/123456789/15146-
dc.description.abstractAbstract. In this paper, an adaptive recurrent neural control scheme is applied to a wind turbine with permanent magnet synchronous generator. Due to the variable behavior of wind currents, the angular speed of the generator is required at a given value in order to extract the maximum available power. In order to develop this control structure, a high order recurrent neural network is used to model the turbine-generator model which is assumed as an unknown system; a learning law is obtained using the Lyapunov methodology. Then a control law, which stabilizes the reference tracking error dynamics, is developed using Control Lyapunov Functions. Via simulations, the control scheme is applied to maximum power operating point on a small wind turbine.es
dc.description.sponsorshipInstituto Politécnico Nacional - Centro de Investigación en Computación (CIC).es
dc.language.isoen_USes
dc.publisherRevista Computación y Sistemas; Vol. 14 No. 2es
dc.relation.ispartofseriesRevista Computación y Sistemas;Vol. 14 No. 2-
dc.subjectKeywords. Neural networks, Wind turbine, Permanent magnet synchronous generator, Maximum power control, Lyapunov methodology.es
dc.titleHigh Order Recurrent Neural Control for Wind Turbine with a Permanent Magnet Synchronous Generatores
dc.title.alternativeControl Neuronal Recurrente de Alto Orden para Turbinas de Viento con Generador Síncrono de Imán Permanentees
dc.typeArticlees
dc.description.especialidadInvestigación en Computaciónes
dc.description.tipoPDFes
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