Model-Free Predictive Current Control of Synchronous Reluctance Motors Based on a Recurrent Neural Network

被引:0
|
作者
Ahmed, Hamza Mesai [1 ,2 ]
Jlassi, Imed [2 ]
Cardoso, Antonio J. Marques [2 ]
Bentaallah, Abderrahim [1 ]
机构
[1] Univ Djillali Liabes Sidi Bel Abbes, ICEPS Lab, BP 98, Sidi Bel Abbes, Algeria
[2] Univ Beira Interior, CISE Electromechatron Syst Res Ctr, P-6201001 Covilha, Portugal
关键词
Predictive models; Stators; Recurrent neural networks; Saturation magnetization; Current control; Voltage control; Artificial neural networks; Model-free predictive control; recurrent neural network; synchronous reluctance motor;
D O I
暂无
中图分类号
R15 [营养卫生、食品卫生]; TS201 [基础科学];
学科分类号
100403 ;
摘要
Recently, model-based predictive current control (MB-PCC) has been presented as a good alternative to classical control algorithms in terms of simplicity and performance reliability. However, MB-PCC suffers from the high dependence on system parameters, which may deteriorate its performance under parameters variations. On the other hand, synchronous reluctance motors (SynRMs) are susceptible to suffer from inductances variations due to the magnetic saturation. Accordingly, in this article a new model-free predictive current control of SynRMs based on a recurrent neural network (RNN-PCC) is developed and proposed. The proposed RNN-PCC relies on the identification of the SynRM currents without considering any parameters. Simulation and experimental results show that both RNN-PCC and MB-PCC have similarly excellent dynamics, while better control performance and tracking errors can be achieved thanks to the proposed RNN-PCC.
引用
收藏
页码:10984 / 10992
页数:9
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