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首页> 外文期刊>IEEE Transactions on Energy Conversion >A Stator Resistance Estimation Scheme for Speed Sensorless Rotor Flux Oriented Induction Motor Drives
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A Stator Resistance Estimation Scheme for Speed Sensorless Rotor Flux Oriented Induction Motor Drives

机译:无速度传感器转子磁通定向感应电动机驱动器的定子电阻估计方案

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Accurate knowledge of stator resistance is of utmost importance for correct operation of a number of speed sensorless induction motor control schemes in the low speed region. Since stator resistance inevitably varies with operating conditions, stable and accurate operation at near-zero speed requires an appropriate online identification algorithm for the stator resistance. The paper proposes such an identification algorithm, which is developed for the rotor flux-based model reference adaptive system (MRAS) type of the speed estimator in conjunction with a rotor flux oriented control scheme. In this speed estimation method, only one degree of freedom (out of the two available) is utilized for speed estimation. It is proposed to utilize the second available degree of freedom as a means for adapting the stator resistance online. The parallel stator resistance and rotor speed identification algorithm is developed in a systematic manner, using Popov's hyperstability theory. It increases the complexity of the overall control system insignificantly and enables correct speed estimation and stable drive operation at near-zero speeds. The proposed speed estimator with parallel stator resistance identification is at first verified by simulation. Extensive experimentation is conducted next at low speeds of rotation and successful stator resistance identification is achieved down to 0.5-Hz frequency of rotation.
机译:正确了解定子电阻对于在低速区域正确运行多种无速度传感器的感应电动机控制方案至关重要。由于定子电阻不可避免地随运行条件而变化,因此在接近零的速度下稳定且准确地运行需要对定子电阻进行适当的在线识别。本文提出了一种识别算法,该算法针对基于转子磁通的模型参考自适应系统(MRAS)类型的速度估计器,结合面向转子磁通的控制方案而开发。在这种速度估计方法中,仅一个自由度(在两个可用的自由度中)用于速度估计。提出利用第二可用自由度作为在线调整定子电阻的手段。利用波波夫的超稳定性理论,系统地开发了并联定子电阻和转子速度识别算法。它显着增加了整个控制系统的复杂性,并能够进行正确的速度估计和接近零速度的稳定驱动操作。首先通过仿真验证了所提出的具有并联定子电阻识别的速度估计器。接下来,在低转速下进行大量实验,并成功地在低至0.5 Hz的旋转频率下成功识别出定子电阻。

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