Intelligent tracking control of a PMLSM using self-evolving probabilistic fuzzy neural network

被引:57
作者
Chen, Syuan-Yi [1 ]
Liu, Tung-Sheng [1 ]
机构
[1] Natl Taiwan Normal Univ, Dept Elect Engn, Taipei 106, Taiwan
关键词
intelligent control; permanent magnet motors; linear motors; synchronous motors; machine control; position control; machine vector control; intelligent tracking control; SPFNN; self-evolving probabilistic fuzzy neural network; asymmetric membership function controller; permanent magnet linear synchronous motor; servo drive system; field-oriented control; SPFNN-AMF control system; PMLSM servo drive system; control process; learning algorithm; structure learning; parameter learning; LINEAR SYNCHRONOUS MOTOR; PRECISION MOTION CONTROL; SYSTEM; DRIVE; SERVO; SPEED;
D O I
10.1049/iet-epa.2016.0819
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This study presents a self-evolving probabilistic fuzzy (PF) neural network with asymmetric membership function (SPFNN-AMF) controller for the position servo control of a permanent magnet linear synchronous motor (PMLSM) servo drive system. In the beginning, the dynamic model for the PMLSM is analysed on the basis of field-oriented control. Subsequently, an SPFNN-AMF control system, which integrates the advantages of self-evolving NN, PF logic system, and AMF, is proposed to handle vagueness, randomness, and time-varying uncertainties of the PMLSM servo drive system during the control process. For the SPFNN-AMF, the proposed learning algorithm consists of the structure learning and parameter learning in which the former is used to grow and prune the fuzzy rules automatically, whereas the latter is utilised to train the network parameters dynamically. Finally, detailed experimental results of two position commands tracking at different operation conditions demonstrate the validity and robustness of the proposed SPFNN-AMF for controlling the PMLSM servo drive system.
引用
收藏
页码:1043 / 1054
页数:12
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