Title :
Model based optimization and fault tolerant control of permanent magnet machines with harmonic injection pulse width modulation
Author :
Fernando, W.U.N. ; Barnes, Mike
Author_Institution :
Sch. of Electr. & Electron. Eng., Univ. of Manchester, Manchester, UK
Abstract :
Fault tolerant machines and drives are a key technology in safety critical vehicle power and propulsion applications. This paper presents an optimal torque and speed control strategy for permanent magnet (PM) motors under phase open circuit fault conditions. A per-phase harmonic model of a generic PM machine is utilized to obtain the optimal control signals under faulted conditions. This harmonic model considers the saliency of self inductances and the interaction of harmonic components, which are therefore accounted for the optimization process. Controllability of harmonics is achieved with harmonic injection pulse width modulation (HIPWM). Two versions of optimizations, viz. operation with minimized torque ripple, and a multi-objective optimization which also minimizes copper loss and inverter reactive power transfer, are considered. The speed controller is formulated as a cascaded loop feedback / feedforward system, which facilitates operation even with current sensor fault conditions. The proposed controller is extensively analyzed by means of a finite element model (FEM) based dynamic simulation of a five phase interior permanent magnet machine. Operation under normal and three cases of faulted conditions are presented.
Keywords :
angular velocity control; cascade control; fault tolerance; feedback; feedforward; finite element analysis; machine control; optimal control; optimisation; permanent magnet motors; torque control; FEM; HIPWM; PM motors; cascaded loop feedback-feedforward system; copper loss minimizaztion; fault tolerant control; fault tolerant machines; finite element model; five phase interior permanent magnet machine; generic PM machine; harmonic components; harmonic injection pulse width modulation; harmonic model; inverter reactive power transfer; model based optimization; multiobjective optimization; optimal control signals; optimal torque control strategy; optimization process; per-phase harmonic model; permanent magnet machines; permanent magnet motors; phase open circuit fault conditions; safety critical vehicle power; sensor fault conditions; speed control strategy; Fault tolerance; Fault tolerant systems; Harmonic analysis; Mathematical model; Optimization; Reactive power; Torque;
Conference_Titel :
Vehicle Power and Propulsion Conference (VPPC), 2011 IEEE
Conference_Location :
Chicago, IL
Print_ISBN :
978-1-61284-248-6
Electronic_ISBN :
Pending
DOI :
10.1109/VPPC.2011.6043080