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Sensorless control of surface permanent magnet synchronous machines using the high frequency resistance

机译:使用高频电阻的表面永磁同步电机的无传感器控制

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This paper proposes the use of the high frequency rotor resistance for sensorless control of surface permanent magnet synchronous machines (SPMSM) using high frequency signal injection. High frequency signal injection sensorless control techniques normally assume a purely inductive behavior of the machine, the rotor position-dependent differential inductance being the term tracked. A major concern for these methods is the impact that the operating point of the machine and, more specifically, saturation induced saliencies, have on the high frequency inductances and, eventually, on the accuracy of estimated rotor position. Complicated and time consuming signal processing techniques and tedious commissioning procedures are needed in practice to mitigate these problems and to obtain a good performance of the sensorless control. This paper explores the use of the high frequency rotor resistance for sensorless control purposes. A differential rotor resistance is present in SPMSM due to the difference between the electrical conductivity of the permanent magnet material and the rotor lamination. The differential rotor resistance has been found to be significantly more stable with respect to the operating condition of the machine than the differential inductance, allowing simpler implementation and better performance of the sensorless control.
机译:本文提出了使用高频转子电阻对使用高频信号注入的表面永磁同步电机(SPMSM)进行无传感器控制的方法。高频信号注入无传感器控制技术通常假定电机是纯粹的感应行为,与转子位置相关的差分电感是术语“跟踪”。这些方法的主要关注点是电机的工作点,尤其是饱和感应的显着性,对高频电感以及最终对估计的转子位置的精度有影响。在实践中,需要复杂且耗时的信号处理技术和繁琐的调试过程来减轻这些问题并获得无传感器控制的良好性能。本文探讨了将高频转子电阻用于无传感器控制的目的。由于永磁材料的电导率和转子叠片之间存在差异,因此SPMSM中存在转子电阻差。已经发现,相对于电机的工作条件,差动转子的电阻要比差动电感的稳定得多,从而可以简化实现过程并实现无传感器控制的更好性能。

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