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Modulated model predictive current control of an indirect matrix converter with active damping

Di, Zhengfei; Rivera, Marco; Dan, Hanbing; Tarisciotti, Luca; Zhang, Kehan; Xu, Demin; Wheeler, Patrick

Authors

Zhengfei Di

Marco Rivera

Hanbing Dan

Luca Tarisciotti luca.tarisciotti@nottingham.ac.uk

Kehan Zhang

Demin Xu

Patrick Wheeler pat.wheeler@nottingham.ac.uk



Abstract

A modulated model predictive control (M²PC) scheme for an indirect matrix converter is proposed in this paper, including an active damping method to mitigate the input filter resonance. The control strategy allows the instantaneous power control and the output current control at the same time, operating at a fixed frequency. An optimal switching pattern is used to emulate the desired waveform quality features of space vector modulation and achieve zero-current switching operations. The active damping technique emulates a virtual resistor which damps the filter resonance. Simulation results present a good tracking to the output-current references, unity input displacement power factor, the low input-current distortions and a reduced common-mode voltage (CMV).

Publication Date Oct 29, 2017
Peer Reviewed Peer Reviewed
APA6 Citation Di, Z., Rivera, M., Dan, H., Tarisciotti, L., Zhang, K., Xu, D., & Wheeler, P. (2017). Modulated model predictive current control of an indirect matrix converter with active damping
Keywords Matrix converter, modulated model predictive
control, unity input displacement power factor, active damping
Publisher URL http://ieeexplore.ieee.org/abstract/document/8216223/
Related Public URLs http://iecon2017.csp.escience.cn/
Copyright Statement Copyright information regarding this work can be found at the following address: http://eprints.nottingh.../end_user_agreement.pdf
Additional Information Published in: IECON 2017 - 43rd Annual Conference of the IEEE Industrial Electronics Society : Oct. 29 2017-Nov. 1 2017. Piscataway, N.J. : IEEE, 2018. ISBN: 978-1-5386-1127-2. pp. 1313-1318, doi: 10.1109/IECON.2017.8216223 © 2018 IEEE. Personal use of this material is permitted. Permission from IEEE must be obtained for all other uses, in any current or future media, including reprinting/republishing this material for advertising or promotional purposes, creating new collective works, for resale or redistribution to servers or lists, or reuse of any copyrighted component of this work in other works.

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Copyright Statement
Copyright information regarding this work can be found at the following address: http://eprints.nottingham.ac.uk/end_user_agreement.pdf





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