DocumentCode :
26820
Title :
Six-Phase BLDC Reluctance Machines: FEM-Based Characterization and Four-Quadrant Control
Author :
Ursu, Dragos ; Gradinaru, Vlad ; Fahimi, Babak ; Boldea, Ion
Author_Institution :
Dept. of Electr. Machines & Drives, Polytech. Univ. of Timisoara, Timisoara, Romania
Volume :
51
Issue :
3
fYear :
2015
fDate :
May-June 2015
Firstpage :
2105
Lastpage :
2115
Abstract :
In a yet another effort to produce better permanent magnet (PM)-less rotor-winding-less brushless electric motor drives, this paper reports work related to multiphase (m =6) high saliency rotor dual-flat-top alternative current control brushless dc (BLDC) reluctance machine drives. The aim is to produce high torque density, low loss/torque in a PM-less rotor-winding-less machine by full usage of machine windings and core and of inverter kVA. A new derivation of the principle of operation, essential rotary and linear machine topologies, and a 2-D finite-element method (FEM) analysis for torque density and torque pulsations on an already built (6 phase, 6 poles, 35 N·m) lab prototype are made available and show promising results. Experimental flux decay test results are presented, which, together with standstill torque measurements, validate the finite-element model. Advanced iron loss computation by finite-element analysis indicates moderate core loss, although high air-gap magnetic flux density and current harmonics occur as a natural behavior of a BLDC machine. Electrical and mechanical parameter identification is followed by the development of a circuit model based on FEM imported data for parameters and by a four-quadrant control strategy proposal. Running experiments (motoring and generating) with speed-reversal and field-weakening modes using a DSpace platform, which drives three three-phase inverters that power a star-connected six-phase BLDC multiphase reluctance machine are presented, thus showing operation with a reduced number of switches in the inverter.
Keywords :
brushless DC motors; electric current control; finite element analysis; invertors; linear synchronous motors; machine control; reluctance motor drives; rotors; 2D finite-element method; DSpace platform; FEM-based characterization; PM-less rotor-winding-less machine; advanced iron loss computation; circuit model; core loss; current harmonics; electrical parameter identification; field-weakening modes; flux decay test; four-quadrant control; high air-gap magnetic flux density; high torque density; inverter kVA; linear machine topology; low loss-torque; machine windings; mechanical parameter identification; multiphase high saliency rotor dual-flat-top alternative current control brushless DC reluctance machine drives; permanent magnetless rotor-winding-less brushless electric motor drives; rotary machine topology; speed-reversal modes; standstill torque measurements; star-connected six-phase BLDC multiphase reluctance machine; three-phase inverters; torque density; torque pulsations; Inverters; Iron; Magnetic flux; Rotors; Saturation magnetization; Stators; Torque; Brushless machines; Finite Element Analysis; Iron losses; Multiphase Reluctance Machines; finite-element analysis (FEA); iron losses; multiphase reluctance machines (MRMs);
fLanguage :
English
Journal_Title :
Industry Applications, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-9994
Type :
jour
DOI :
10.1109/TIA.2014.2367110
Filename :
6945875
Link To Document :
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