DocumentCode :
1054716
Title :
Implementation of Hybrid Control for Motor Drives
Author :
Lin-Shi, Xuefang ; Morel, Florent ; Llor, Ana M. ; Allard, Bruno ; Rétif, Jean-Marie
Author_Institution :
Lab. Ampere, Inst. Nat. des Sci. Appliquees de Lyon, Villeurbanne
Volume :
54
Issue :
4
fYear :
2007
Firstpage :
1946
Lastpage :
1952
Abstract :
This paper presents the implementation of a hybrid-control strategy applied to a permanent-magnet synchronous-motor (PMSM) drive. Hybrid control is a general approach for control of a switching-based hybrid system (HS). This class of HS includes a continuous process controlled by a discrete controller with a finite number of states. In the case of ac motor drives, in contrast to conventional vector control like proportional-integral control or predictive control, where the inverter is not taken into account by the controller, hybrid control integrates the inverter model and considers the state of the inverter as a control variable. It allows to obtain faster torque dynamics than vector-control algorithms. The hybrid control algorithm requires both computing velocity for real-time implementation and code flexibility for management of low-performance functions and analog-digital interfaces. Codesign appears as a promising methodology for partitioning hybrid-control algorithm between software (flexible) and hardware (velocity) while taking care of overall time constrains. In this paper, the implementation of hybrid-control algorithm for a PMSM drive is performed through a codesign approach on an Excalibur board, embedding a CPU-core (Nios-2 by Altera) inside an APEX20KE200EFC484-2X field-programmable gate array. The partitioning of software and hardware parts is explained. Experimental results show the effectiveness of the implementation. Performances, advantages, and limitations are discussed.
Keywords :
control engineering computing; discrete systems; field programmable gate arrays; hardware-software codesign; machine vector control; permanent magnet motors; power engineering computing; synchronous motor drives; AC motor drives; PMSM drive; analog-digital interfaces; continuous process controlled; discrete controller; field-programmable gate array; hardware-software codesign; hybrid control; permanent-magnet synchronous-motor drive; switching-based hybrid system; torque dynamics; AC motors; Control systems; Hardware; Inverters; Machine vector control; Motor drives; Partitioning algorithms; Pi control; Process control; Proportional control; AC motor drives; control; dynamic hybrid system (HS); field-programmable gate array (FPGA); hardware–software codesign;
fLanguage :
English
Journal_Title :
Industrial Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0046
Type :
jour
DOI :
10.1109/TIE.2007.898303
Filename :
4271568
Link To Document :
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