Predictive direct torque and flux control of an induction motor drive fed by a direct matrix converter with reactive power minimization

dc.contributor.authorLamouchi, Zakaria
dc.contributor.authorBarra, Kamel
dc.date.accessioned2022-04-27T05:35:59Z
dc.date.available2022-04-27T05:35:59Z
dc.date.issued2013
dc.description.abstractThe paper presents a Predictive Direct Torque and Flux Control (PDTFC) of an induction machine fed by a Direct Matrix Converter (DMC). The method combines the merits of Finite States Model Predictive Control (FSMPC) with the ones of DTC control. The proposed control algorithm selects the switching state of the DMC that minimizes the error between torque and flux predictions to their computed values for all different voltage vectors. The optimal voltage vector that minimizes a cost function is then applied to the terminal of the induction machine. Moreover, the proposed predictive control is easily extended to minimize the reactive power in the voltage source side. The control method uses only one sample time and it is very intuitive since it is simple, multi-objective and provides best performances compared to other control laws (fast dynamic response, simple implementation).ar
dc.identifier.isbn978-1-4673-5200-0
dc.identifier.urihttp://hdl.handle.net/123456789/13029
dc.language.isoenar
dc.publisherIEEEar
dc.subjectInduction motorar
dc.subjectPredictive controlar
dc.subjectfinite statesspace modelar
dc.subjectDirect matrix converterar
dc.subjectCost functionar
dc.subjectReactive powerar
dc.titlePredictive direct torque and flux control of an induction motor drive fed by a direct matrix converter with reactive power minimizationar
dc.typeArticlear
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