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Experimental performance of a model reference adaptive flux observer based NFC for IM drive

机译:用于IM驱动的基于模型参考自适应磁通观测器的NFC的实验性能

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This paper presents a model reference adaptive flux (MRAF) observer based neuro-fuzzy controller (NFC) for an induction motor (IM) drive. An improved observer model is developed based on a reference flux model and a closed-loop Gopinath model flux observer which combines current and voltage model flux observers. The d-axis reference flux linkage of the indirect field oriented control is provided by flux weakening method. Furthermore, a proportional-integral (PI) based flux controller is used to provide the compensation for the reference flux model by comparing the flux reference and the observed flux from Gopinath model flux observer. An improved self-tuned NFC is utilized as a speed controller for IM drive. The proposed NFC incorporates fuzzy logic laws with a five-layer artificial neural network (ANN) scheme. In the proposed NFC, parameters of the 4th layer are tuning online for the purpose of minimizing the square of the error. Furthermore, the design of normalized inputs makes the proposed NFC suitable for variant size of IM with a little adjusting. A complete simulation model for indirect field oriented control of IM incorporating the proposed MRAF observer based NFC is developed in Matlab/Simulink. The performances of the proposed IM drive is investigated extensively at different dynamic operating conditions such as step change in load, step change in change in speed, parameter variations, etc. The proposed IM drive is also implemented in real-time using DSP board DS1104 for a laboratory 1 HP IM. The performance of the proposed MRAF observer based NFC controller is found robust and potential candidate for high performance industrial drive applications.
机译:本文介绍了一种基于模型参考自适应磁通(MRAF)的基于神经模糊控制器(NFC),用于感应电动机(IM)驱动器。基于参考磁通模型和结合电流和电压模型通量观察者的闭环Gopinath模型磁通观测器开发了一种改进的观察者模型。间接场取向控制的D轴参考磁通量通过助焊剂弱化方法提供。此外,使用比例 - 积分(PI)的磁通控制器通过比较来自Gopinath Model Voorever的磁通参考和观察通量来提供参考磁通模型的补偿。改进的自调谐NFC用作IM驱动器的速度控制器。该建议的NFC包括具有五层人工神经网络(ANN)方案的模糊逻辑法。在所提出的NFC中,4 th 图层的参数在线调谐,以便最小化误差的平方。此外,归一化输入的设计使得所提出的NFC适用于IM的变体尺寸。在Matlab / Simulink中开发了一种结合所提出的MRAF观察者的IM的间接场取向控制的完整仿真模型。在诸如载荷的步骤变化之类的不同动态操作条件下广泛研究了所提出的IM驱动器,速度变化,参数变化等的步骤变化。建议的IM驱动器也使用DSP板DS1104实时实现。实验室1 HP IM。建议的MRAF观察者的NFC控制器的性能被发现强大,潜在的高性能工业驱动应用候选者。

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