基于RBF神经网络的无刷双馈电机滑模控制

Z. Shao, Y. Zhan
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引用次数: 0

摘要

提出了一种基于径向基函数神经网络的无刷双馈电机滑模控制策略。介绍了BDFM的工作原理。建立了BDFM转子磁场定向和电磁转矩的动力学模型。所提出的BDFM控制器消除了大多数SMC方案所遇到的抖振问题,并在控制系统中利用了SMC的鲁棒性和良好的静、动态性能。计算机仿真结果表明了所提出的控制策略的可行性、正确性和有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
RBF Neural Network-Based Sliding Mode Control for Brushless Doubly Fed Machine
In this paper, based on a radial basis function (RBF) neural network, a sliding mode control (SMC) strategy for brushless doubly fed machine (BDFM) is presented. The operating principle of BDFM has been introduced. The dynamic model of rotor field oriented and electromagnetic torque for BDFM is expressed. The proposed controller for BDFM eliminates the chattering encountered by most SMC schemes,and employs the robustness and excellent static and dynamic performances of SMC in the control system. Computer simulation results show that the proposed control strategy is of the feasibility, correctness and effectiveness.
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