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首页> 外文期刊>IEEE Transactions on Energy Conversion >Detection of broken bars in induction motors using an extended Kalman filter for rotor resistance sensorless estimation
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Detection of broken bars in induction motors using an extended Kalman filter for rotor resistance sensorless estimation

机译:使用扩展卡尔曼滤波器检测感应电动机中的断条,以进行转子电阻无传感器估算

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This paper deals with broken bars detection in induction motors. The hypothesis on which detection is based is that the apparent rotor resistance of an induction motor will increase when a rotor bar breaks. To detect broken bars, measurements of stator voltages and currents are processed by an extended Kalman filter for the speed and rotor resistance simultaneous estimation. In particular, rotor resistance is estimated and compared with its nominal value to detect broken bars. In the proposed extended Kalman filter approach, the state covariance matrix is adequacy weighted leading to a better states estimation dynamic. Its main advantage is the correct rotor resistance estimation even for an unloaded induction motor. As part of this estimation process, it is necessary to compensate for the thermal variation in the rotor resistance. Computer simulations, carried out for a 4 kW four-pole squirrel cage induction motor, provide an encouraging validation of the proposed sensorless broken bars detection technique.
机译:本文涉及感应电动机中的断条检测。检测所基于的假设是,当转子条断裂时,感应电动机的视在转子电阻将增加。为了检测断条,可通过扩展的卡尔曼滤波器处理定子电压和电流的测量值,以便同时估算速度和转子电阻。特别是,估算转子电阻并将其与标称值进行比较以检测断条。在所提出的扩展卡尔曼滤波方法中,状态协方差矩阵被适当加权,从而导致更好的状态估计动态。它的主要优点是即使对于空载的感应电动机,也可以正确估算转子电阻。作为此估算过程的一部分,有必要补偿转子电阻中的热变化。对4 kW四极鼠笼式感应电动机进行的计算机仿真,为提出的无传感器断条检测技术提供了令人鼓舞的验证。

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