基于Elman神经网络的电机转子电阻辨识

B. Fan, Xing Li, Guanghui Shi, Weigang Zhao
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引用次数: 2

摘要

电机参数辨识是包括矢量控制在内的高性能变频调速系统必须面对的问题。探索新的有效的参数辨识方法具有广阔的理论和实践意义。电动机的数学模型具有高阶、非线性和复杂耦合的特点,其参数随工作状态的变化难以用确定的函数来描述。采用具有函数逼近能力和唯一反馈能力的Elman神经网络对转子电阻进行辨识。用其他方法得到的参数对仿真结果进行了验证,显示出一定的优越性。对进一步扩展电机参数辨识具有一定的参考意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Motor rotor resistance identification based on Elman neural network
Motor parameter identification is problem must be faced by high performance variable frequency speed adjustment system include Vector Control. Explore new effective parameter identification method possess vast theoretical and practical meanings. Motor's mathematical model has the character of high order, nonlinear and complicate coupling, the parameter change with the work state is difficult to describe with a definite function. Rotor resistance is identified with Elman neural network which has the ability of function approximation and unique feedback. The simulation result is validated by the parameter obtained with other methods and shows some advantages. It has some reference meaning to more extend motor parameter identification.
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