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Electric Vehicle Traction Based on Synchronous Reluctance Motors

机译:基于同步磁阻电机的电动汽车牵引

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It was recently demonstrated that the synchronous reluctance motor is well suited for electric as well as for hybrid electric vehicles. This paper deeply investigates the capabilities of a synchronous reluctance motor and compares them with those of a permanent-magnet-assisted synchronous reluctance motor, according to the typical requirement of a traction application. A proper rotor design is necessary. The average torque is due to the rotor anisotropy. The permeance difference between the direct- and the quadrature-axis is achieved by means of a high number of flux barriers. The position of the flux barrier ends and proper rotor asymmetries are chosen so as to reduce the torque ripple, mainly due to the slot harmonics. The impact of the rotor design on the motor performance is presented deeply, showing several simulation and experimental results, carried out on synchronous reluctance motors with different rotor geometries. Permanent magnets can be inset in the flux barriers to assist the synchronous reluctance motor improving its capabilities, but avoiding to use rare-earth permanent magnets. The main advantages of the permanent magnet assistance is an increase of the main torque density and of the power factor. They are evaluated experimentally. However, the drawback of adopting permanent magnets is the possible demagnetization of the magnets themselves. This can greatly limit the maximum overload capability of the motor, which is a salient requirement of a traction motor.
机译:最近证明,同步磁阻电动机非常适合于电动以及混合动力电动汽车。本文根据牵引应用的典型要求,对同步磁阻电动机的性能进行了深入研究,并将其与永磁辅助同步磁阻电动机的性能进行了比较。正确的转子设计是必要的。平均转矩归因于转子各向异性。直轴和正交轴之间的磁导率差异是通过大量磁通势垒实现的。选择磁通势垒端的位置和适当的转子不对称,以减少转矩波动,这主要是由于槽谐波引起的。深入介绍了转子设计对电动机性能的影响,并显示了对具有不同转子几何形状的同步磁阻电动机进行的一些仿真和实验结果。可以在磁通屏障中插入永磁体,以帮助同步磁阻电机提高其性能,但避免使用稀土永磁体。永磁辅助装置的主要优点是增加了主转矩密度和功率因数。他们进行了实验评估。但是,采用永磁体的缺点是磁体本身可能会退磁。这会极大地限制电动机的最大过载能力,这是牵引电动机的显着要求。

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