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Sensorless control of induction motors by the MSA based MUSIC technique

机译:基于MSA的MUSIC技术对感应电机进行无传感器控制

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This paper proposes a speed sensorless technique for induction motor drives based on the retrieval and tracking of the rotor slot harmonics (RSH). The RSH related to the rotor speed is first extracted from the stator phase current signature by the adoption of two cascaded ADALINEs (ADAptive Linear Element), whose output is the estimated slot harmonic. Then, the frequency of this slot harmonic as well as the speed is estimated by using minor space analysis (MSA) EXIN neural networks, which work on-line to iteratively compute the frequency of the slot harmonics based on MUSIC spectrum estimation theory. Thanks to its sample-based learning and the reduced mean square frequency estimation error, the speed estimation is fast and accurate. The proposed sensorless technique has been experimentally tested on a suitably developed test set-up with a 2-kW induction motor drive. It has been verified that this algorithm can track the rotor speed rapidly and accurately in a very wide speed range, working from rated speed down to 1.3 % of it.
机译:本文基于对转子槽谐波(RSH)的检索和跟踪,提出了一种用于感应电动机驱动的无速度传感器技术。首先通过采用两个级联的ADALINE(ADAptive线性元件)从定子相电流信号中提取与转子速度相关的RSH,其输出是估计的槽谐波。然后,使用小空间分析(MSA)EXIN神经网络估算该缝隙谐波的频率以及速度,该网络在MUSIC频谱估计理论的基础上进行在线迭代迭代计算缝隙谐波的频率。由于其基于样本的学习和减少的均方频率估计误差,因此速度估计既快速又准确。所提出的无传感器技术已在带有2 kW感应电动机驱动器的适当开发的测试装置上进行了实验测试。业已证实,该算法可以在很宽的速度范围内快速,准确地跟踪转子速度,从额定速度降低到其1.3%。

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