Title :
A DSP-based direct torque control of five-phase synchronous reluctance motor drive
Author :
Shi, Ruhe ; Toliyat, Hamid A. ; El-Antably, Ahmed
Author_Institution :
Dept. of Electr. Eng., Texas A&M Univ., College Station, TX, USA
Abstract :
This paper develops the direct torque control (DTC) technique for five-phase synchronous reluctance motor (SynRel) using a digital signal processor (DSP). The mathematical model of the proposed five-phase SynRel motor is first given. The well-known winding function method is used to derive winding inductances in order to develop the dynamic equations of SynRel in natural frame of reference (a-b-c-d-e). The five-phase transformation from the stationary (a-b-c-d-e) reference system to a rotating (q-d-Q-D-n) reference system is used to remove the angular dependency of the inductances to obtain voltage equations for the five-phase SynRel motor in the synchronous rotating reference frame. The torque in terms of currents is then obtained using the magnetic co-energy method. Direct torque control is thus developed for the five-phase SynRel motor followed by simulation results in the Matlab/Simulink environment. The control block diagram of the proposed direct torque control is also given in the paper. The switching pattern is developed in order to maintain a sinusoidal flux waveform in the air gap. A five-phase SynRel motor plus the five phase current regulated IGBT based inverter were designed and fabricated in the laboratory. The control method is implemented on a TMS320C32 digital signal processor board
Keywords :
air gaps; digital control; digital signal processing chips; inductance; insulated gate bipolar transistors; invertors; machine control; machine windings; reluctance motor drives; switching circuits; torque control; DSP-based direct torque control; Matlab/Simulink environment; TMS320C32 digital signal processor board; air gap; angular dependency removal; digital signal processor; direct torque control; dynamic equations; five phase current regulated IGBT based inverter; five-phase synchronous reluctance motor drive; five-phase transformation; inductances; magnetic co-energy method; mathematical model; rotating reference system; sinusoidal flux waveform; switching pattern; voltage equations; winding function method; winding inductances; Digital signal processing; Digital signal processors; Equations; Induction motors; Magnetic flux; Mathematical model; Reluctance motors; Synchronous motors; Torque control; Voltage;
Conference_Titel :
Applied Power Electronics Conference and Exposition, 2001. APEC 2001. Sixteenth Annual IEEE
Conference_Location :
Anaheim, CA
Print_ISBN :
0-7803-6618-2
DOI :
10.1109/APEC.2001.912500