Title :
A new current control mode for switched reluctance motor drive with DSP controller
Author :
Wei, Guo ; Zhan Qianghua ; Zhiyuan, Ma
Author_Institution :
Huazhong Univ. of Sci. & Technol., Wuhan, China
Abstract :
This paper firstly introduces the necessity of this 90-degree phase-shift current control (PSCC) mode. Afterward, the principle of PSCC is described in detail, including the hardware requirement and software programming. The analysis indicate that with this control mode, chop frequency in winding can reach 20 kHz with 10 kHz power switches and control frequency can reach 40 kHz at the same time. Subsequently, based on the linear and nonlinear mathematical models of the switched reluctance motor (SRM), some simulation work has been done. The simulation results show that when we apply this mode to SRM drive (SRD) system, the current waveform becomes better. So the ripple of the torque has been reduced simultaneously and the vibration and acoustic noise are reduced involuntarily. Stationary test makes clear that the acoustic noise is diminished greatly. At the last, some experiments have been presented on a 50 kW SRD system used for an electric vehicle (EV). Experimental results indicate that this mode can be implemented feasibly and have good action on SRD systems
Keywords :
DC-AC power convertors; PWM invertors; choppers (circuits); control system analysis; control system synthesis; electric current control; electric vehicles; machine control; machine testing; machine theory; machine windings; reluctance motor drives; traction motor drives; 10 kHz; 20 kHz; 40 kHz; 50 kW; DSP controller; SRM; acoustic noise reduction; control design; control frequency; control simulation; current control mode; current waveform improvement; electric vehicle; hardware requirement; linear mathematical models; nonlinear mathematical models; phase-shift current control mode; power switches; software programming; switched reluctance motor drive; torque ripple improvement; vibration reduction; winding chop frequency; Acoustic noise; Acoustic testing; Current control; Electric vehicles; Frequency; Hardware; Mathematical model; Reluctance machines; Reluctance motors; Torque;
Conference_Titel :
Electrical Machines and Systems, 2001. ICEMS 2001. Proceedings of the Fifth International Conference on
Conference_Location :
Shenyang
Print_ISBN :
7-5062-5115-9
DOI :
10.1109/ICEMS.2001.971852