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Optimization of a Synchronous Reluctance Machine for an Industrial Drive Application Regarding to Sensorless Control

机译:用于无传感器控制的工业驱动应用同步磁阻机的优化

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In this paper synchronous reluctance machine topologies for an industrial drive application are investigated regarding to sensorless control and regarding to the flux weakening operation. An induction machine drive shall be replaced by a synchronous reluctance machine because of lower machine costs and the possibility of sensorless control. The induction machine stator is intended to be equipped with the SynRM rotor to provide a modular machine concept. Two different rotor types, a flux barrier and a salient pole machine topology are discussed. By finite element simulation methods both machine types are designed for a possible operation in flux weakening range with low harmonics. The flux barrier rotor was already built up as machine prototype and was operated by a position sensorless control. Based on this implementation key requirements for the optimization of a salient pole machine are identified. To overcome drawbacks of the salient machine topology several design measures like rotor skewing, stator coil pitching, rotor pole shaping and unequal pole angles are considered. Finally, a salient pole machine design with low harmonics is reached which is expected to be well operated in deep flux weakening range. However, the final design shows a lower torque compared to the flux barrier machine.
机译:在本文中,对工业驱动应用的同步磁阻机拓扑有关于无传感器控制和关于磁通弱化操作的拓扑。由于机器成本较低和无传感器控制的可能性,应由同步磁阻机取代的感应机器驱动器。感应机定子旨在配备SYNRM转子以提供模块化机器概念。讨论了两种不同的转子类型,磁通屏障和凸极机拓扑。通过有限元仿真方法,两种机器类型都设计用于磁通量弱化范围的可能操作,具有低谐波。磁通屏障转子已经建立为机原型,并通过位置无传感器控制操作。基于该实现,识别了优化凸极机器的关键要求。为了克服凸起机器拓扑的缺点,考虑了转子偏斜,定子线圈俯仰,转子杆整形和不等杆角度等设计测量。最后,达到了低谐波的凸极机械设计,预计将在深度磁通弱势范围内很好地运行。然而,与磁通阻挡机相比,最终设计显示了较低的扭矩。

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