Dual Mode Dual Stator Wound Rotor Synchronous Machine for Variable Speed Applications.

A. Hussain, Muhammad Saad Ayub, T. Yazdan, B. Kwon
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引用次数: 1

Abstract

Electric vehicles and hybrid electric vehicles are being developed as a means to extenuate the environmental concerns. Permanent magnet (PM) machines have been used for such applications due to their high torque density, robust structure and no need for an external excitation system. However, the limited supply and increasing price of PM material create a need to search the alternative solutions such as the brushless wound rotor synchronous machines (BL-WRSM). Several brushless topologies for WRSMs have been presented in [1- 3]. In [1] and [2], the brushless operation of WRSM is achieved by utilizing sub-harmonic and third harmonic components of stator MMF, respectively. In [3], the sub-harmonic component of stator MMF is generated by dividing the stator winding into two sets of series connected windings, which are then supplied through a single inverter. In the brushless topologies, the stator current is the only source of excitation and the field current is induced from the harmonic component of MMF. When the machine operates below the rated speed, the induction process slows down and the magnitude of the field current is gradually decreased with the decrease in the speed of the machine. Therefore, the torque in the constant torque region cannot be maintained constant by the BL-WRSM. However, at or above the rated speed these machines work properly. In this paper, a dual mode dual stator wound rotor synchronous machine (DMDS-WRSM) for variable speed applications is proposed. Through the dual mode (DM) machine operation, the constant torque and the constant power are achieved in the constant torque and constant power region, respectively. However, the dual stator design has been chosen to improve the torque density of the machine as compared to the torque density of the single stator BL-WRSM presented in [3]. A 2-D finite element analysis is performed to validate the proposed DMDS-WRSM.
双模式双定子绕组转子同步电机变速应用。
电动汽车和混合动力汽车的发展是减轻环境问题的一种手段。永磁(PM)机器由于其高扭矩密度,坚固的结构和不需要外部励磁系统而被用于此类应用。然而,PM材料的有限供应和不断上涨的价格创造了寻找替代解决方案的需要,如无刷绕线转子同步电机(BL-WRSM)。wrsm的几种无刷拓扑已在[1- 3]中提出。在[1]和[2]中,分别利用定子MMF的次谐波和三谐波分量实现WRSM的无刷运行。在[3]中,定子MMF的次谐波分量是通过将定子绕组分成两组串联的绕组产生的,然后通过单个逆变器供电。在无刷拓扑结构中,定子电流是励磁的唯一来源,磁场电流由MMF的谐波分量感应产生。当机器低于额定转速运行时,感应过程变慢,磁场电流的大小随着机器转速的降低而逐渐减小。因此,BL-WRSM无法使恒转矩区域的转矩保持恒定。然而,在额定速度或以上,这些机器正常工作。本文提出了一种适用于变速应用的双模双定子绕线转子同步电机(DMDS-WRSM)。通过双模式(DM)机器运行,分别在恒转矩和恒功率区域实现恒转矩和恒功率。然而,与[3]中提出的单定子BL-WRSM的转矩密度相比,选择双定子设计来提高机器的转矩密度。通过二维有限元分析验证了所提出的DMDS-WRSM。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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