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Indirect field oriented adaptive control of induction motor based on neuro-fuzzy controller

机译:基于神经模糊控制器的感应电动机间接磁场定向自适应控制

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The present paper proposes an adaptive structure, completely based on the artificial intelligence concepts, for speed control of an induction motor, without any identification of the motor dynamic. Approach with reference model has been chosen, and a neuro-fuzzy controller assures excellent qualities in terms of tracking, and disturbance rejection with high robustness. A neural adaptive mechanism is synthesized to correct the law generated by the controller to provide a compensation signal. This last, added to the controller output, generate the appropriate adapted law. The effectiveness and feasibility of the structure developed is verified by several simulation tests with different conditions operating.
机译:本文提出了一种完全基于人工智能概念的自适应结构,用于感应电动机的速度控制,而无需任何对电动机动态的识别。已经选择了具有参考模型的方法,并且神经模糊控制器在跟踪和抗干扰性方面确保了出色的质量,并且具有很高的鲁棒性。合成了神经自适应机制以校正控制器生成的定律以提供补偿信号。最后,添加到控制器输出中,生成适当的调整定律。通过在不同条件下运行的几个模拟测试,验证了所开发结构的有效性和可行性。

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