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Model-Free Predictive Current Control of DFIG Based on an Extended State Observer Under Unbalanced and Distorted Grid

机译:基于不平衡和扭曲网格下的扩展状态观测器的DFIG的无模型预测电流控制

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摘要

The traditional method of controlling a doubly fed induction generator based on a mathematical model has poor control performance when the motor parameters are inaccurate. To solve this problem, this article proposes a new model-free predictive current control (MFPCC) scheme. In the proposed method, an ultralocal model is used to replace the mathematical model of the motor, and an extended state observer (ESO) is used to estimate the value of the disturbance to improve the control performance. Since only the measured stator voltage and current values are required in the final control expression, the control system achieves good parameter robustness. In addition to superior control performance when the parameters are inaccurate, the proposed method also has good steady state and dynamic performance when the parameters are accurate. The proposed MFPCC scheme based on an ESO is extended to an unbalanced and distorted grid by modifying the stator current reference. The presented experimental results confirm the effectiveness of the proposed method.
机译:基于数学模型的控制双馈电流发电机的传统方法具有较差的控制性能,当电动机参数不准确时。为了解决这个问题,本文提出了一种新的无模式预测电流控制(MFPCC)方案。在所提出的方法中,Ultralocal模型用于更换电动机的数学模型,并且扩展状态观察者(ESO)用于估计干扰的值以提高控制性能。由于在最终控制表达式中仅需要测量的定子电压和电流值,因此控制系统实现了良好的参数鲁棒性。除了卓越的控制性能外,当参数不准确时,当参数准确时,所提出的方法还具有良好的稳态和动态性能。通过修改定子电流参考,基于ESO的所提出的基于ESO的MFPCC方案扩展到不平衡和失真的网格。所提出的实验结果证实了该方法的有效性。

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