A comparative experimental study of direct torque control based on adaptive fuzzy logic controller and particle swarm optimization algorithms of a permanent magnet synchronous motor

被引:0
作者
H. Mesloub
M. T. Benchouia
A. Goléa
N. Goléa
M. E. H. Benbouzid
机构
[1] University of Biskra,LGEB Laboratory
[2] Larbi Ben M’hidi University,LGEA Laboratory
[3] University of Brest,LBMS
来源
The International Journal of Advanced Manufacturing Technology | 2017年 / 90卷
关键词
Permanent magnet synchronous motor (PMSM); Direct torque control (DTC); Adaptive fuzzy logic controller (AFLC); Particle swarm optimization (PSO); Practical validation;
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中图分类号
学科分类号
摘要
Direct torque control (DTC) of permanent magnet synchronous motor (PMSM) drives is receiving increasing attention due to important advantages, such as fast dynamic and low dependence on motor parameters. However, conventional DTC scheme, based on comparators and the switching table, suffers from large torque and flux ripples. In this paper, two intelligent approaches are proposed in order to improve DTC performance. The first approach is based on two adaptive fuzzy logic controllers (AFLC). The first AFLC replaces the conventional comparators and switching table and the second AFLC adjusts in real time the outer loop PI parameters. In the second approach, particle swarm optimization (PSO) is used as another alternative to adjust the PI parameters. Simulation and experimental results demonstrate the effectiveness of the proposed intelligent techniques. Besides, the system associated with these techniques can effectively reduce flux and torque ripples with better dynamic and steady state performance. Quantitatively, PSO-based DTC approach reduces greatly flux and torque ripples. Further, PSO-based approach maintains a constant switching frequency which improves the PMSM drive system control performance.
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页码:59 / 72
页数:13
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