Title :
Novel decoupling model predictive current control strategy for flux-switching permanent magnet synchronous machines with low torque ripple and switching loss
Author :
Wen Wu Yang ; Wei Xu ; Jian Xun Jin
Author_Institution :
Sichuan Deyang Electr. Power Bur., Deyang, China
Abstract :
Flux-switching permanent magnet machine (FSPMM) is a new doubly salient permanent motor which has inherited the advantages of doubly salient permanent magnet (DSPM) and reluctance motors switched reluctance machine (SRM). With the good merits of high torque density, strong mechanical robustness, fault redundancy ability, etc., FSPMM has found great potential applications in transportation, electrical airplane, ship, and so on. However, it suffers large torque ripple and switching losses for the uniqueness of the stator and rotor. In this paper, a novel model predictive current control (MPCC) algorithm is proposed for reducing the torque ripple and switching losses. An improved modulation strategy, Cost Function, has been used to look for the best switching vector and the most ideal switching frequency for the drive converter. Comprehensive theoretical and simulation analysis has validated the innovation feasibility.
Keywords :
electric current control; machine vector control; permanent magnet motors; predictive control; reluctance motors; switching convertors; torque control; DSPM; FSPMM; MPCC algorithm; SRM; cost function; decoupling model predictive current control strategy; doubly salient permanent magnet; doubly salient permanent motor; drive converter; flux-switching permanent magnet machine; ideal switching frequency; improved modulation strategy; reluctance motors; rotor; stator; switched reluctance machine; switching losses; switching vector; torque ripple; Current control; Educational institutions; Equations; Mathematical model; Predictive models; Reluctance motors; Torque; cost function; flux-switching permanent magnet machine (FSPMM); model based predictive current control (MPCC);
Conference_Titel :
Applied Superconductivity and Electromagnetic Devices (ASEMD), 2013 IEEE International Conference on
Conference_Location :
Beijing
Print_ISBN :
978-1-4799-0068-8
DOI :
10.1109/ASEMD.2013.6780778