Optimization of adaptation Jains of full-order flux observer in sensorless induction motor drives using genetic algorithm

被引:5
作者
Luo, Hui [1 ]
Lv, Yunfci [2 ]
Deng, Xin [1 ]
Zhang, Huajun [1 ]
机构
[1] Huazhong University of Science and Technology, China
[2] Second Ship Design Institution, China
关键词
Adaptive full-order flux observer; Genetic algorithms; Induction motor drives; Sensorless;
D O I
10.3923/itj.2009.577.582
中图分类号
学科分类号
摘要
This study presents a new optimization method of the adaptation PI gains of the full-order flux observer in the sensorless induction motor drives. The new method employs a Genetic Algorithm (GA) based optimization routine that can be implemented off-line. A suitable fitness function is defined to assess the tracking performance, the noise sensitivity and the stability of the rotor speed estimation system when each individual's parameters are employed. The tournament selection is used to choose the parent individuals and a large mutation probability is used to prevent the evolution from the prematurity. The PI gains calculated according to the design guidelines are put in the initial population to quicken the optimization procedure. With the help of the proposed method, the desirable PI gains can be obtained and the optimization procedure is fast and efficient. Simulation results show that the estimated speed tracks the practical speed well when the obtained PI gains are employed. Simulation results validate the proposed method in the study. Since, the efficient optimization ability, the Genetic Algorithm (GA) is pretty suitable for the optimization of the adaptation PI gains of the full-order flux observer in the sensorless induction motor drives. © 2009 Asian Network for Scientific Information.
引用
收藏
页码:577 / 582
页数:5
相关论文
共 11 条
[1]  
Goldberg D.E., Genetic Algorithms in Search, Optimization and Machine Learning, (1989)
[2]  
Hofmann H., Sanders S.R., Speed-sensorless vector torque control of induction machines using a two-time-scale approach, IEEE Trans. Ind. Appl, 34, pp. 169-177, (1998)
[3]  
Hollz J., Quan J., Sensorless vector control of induction motors at very low speed using a nonlinear inverter model and parameter identification, IEEE Trans. Ind. Appl, 38, pp. 1087-1095, (2002)
[4]  
Kubota H., Matsuse K., Nakano T., DSP-based speed adaptive flux observer of induction motor, IEEE Trans. Ind. Appl, 29, pp. 344-348, (1993)
[5]  
Lascu C., Boldea I., Blaabjerg F., Comparative study of adaptive and inherently sensorless observers for variable-speed induct ion-motor drives, IEEE Trans. Industrial Electron, 53, pp. 57-65, (2006)
[6]  
Maes J., Melkcbeck J.A., Spccd-scnsorless direct torque control of induction motors using an adaptive flux observer, IEEE Trans. Ind. Appl, 36, pp. 778-785, (2000)
[7]  
Peng F.Z., Fukao T., Robust speed identification for speed-sensorless vector control of induction motors, IEEE Trans. Ind. Appl, 30, pp. 1234-1240, (1994)
[8]  
Schauder C., Adaptive speed identification for vector control of induction motors without rotational transducers, IEEETrans. Ind. Appl, 28, pp. 1054-1061, (1992)
[9]  
Suwankawin S., Sangwongwanich S., A speed-sensorless IM drive with decoupling control and stability analysis of speed estimation, IEEE Trans. Ind. Elect, 49, pp. 444-455, (2002)
[10]  
Suwankawin S., Sangwongwanich S., Design strategy of an adaptive full-order observer for speed-sensorless induction-motor drives-tracking performance and stabilization, IEEE Trans. Ind. Elect, 53, pp. 96-119, (2006)