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Model predictive current control of six-phase induction motor drives using virtual vectors and space vector modulation

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URI
http://hdl.handle.net/20.500.14066/4646
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Autor(es)
González Barrios, Osvaldo JuliánAutoridad CONACYT; Ayala Silva, Magno ElíasAutoridad CONACYT; Romero Aquino, Carlos Alberto AníbalAutoridad CONACYT; Delorme Diarte, Silvia Larizza; Rodas Benítez, Jorge EstebanAutoridad CONACYT; Gregor Recalde, Raúl IgmarAutoridad CONACYT; González Prieto, Ignacio; Durán, Mario J.
Fecha de publicación
2022-01-07
Tipo de publicación
info:eu-repo/semantics/article
Materia(s)
Modulation strategies
Multiphase induction machine
Predictive current control
Space vector modulation
Virtual vectors
 
Resumen
The use of multiphase machines has become a suitable choice in high-performance industry applications through advantages such as lesser torque ripple, enhanced current distribution per phase, and fault-tolerance capability. Among different control approaches for the regulation of multiphase drives, model-based predictive current control (MPCC) is one of the most analyzed strategies due to its adaptability and good dynamic response. However, this approach presents some disadvantages, e.g., high x−y currents and increased harmonic content in the fundamental α−β stator currents. Modulation strategies have been combined with MPCC to overcome these shortcomings. This article proposes a modulated MPCC with virtual vectors and space vector modulation for the regulation of an asymmetrical six-phase induction machine to minimize the x−y currents, reduce the harmonic content, and perform improved stator currents tracking compared with other MPCC versions. Experimental tests are provided to demonstrate the quality of the proposed current control strategy.
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