Split Rotor Concept for Permanent Magnet Electrical Machines

M. Kulan, N. Baker, S. Turvey
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引用次数: 1

Abstract

This paper discusses a field weakening method for permanent magnet electrical machines. The proposed method can be an alternative to complex mechanical field weakening methods for safety critical applications. The developed concept is based on a split rotor in which a permanent magnet rotor is split into two parts to achieve two states of field excitation; either maximum flux output or the least flux output, depending on alignments between the rotor parts, having a degree of freedom to rotate on the shaft. The stator of the permanent magnet (PM) machine exposes two magnetic fluxes by the split rotor sections. Thus, the fixed nature of the PM excitation can be altered by this concept to achieve a wide speed range, which is a key concern in PM electrical machines at higher speeds. A number of 3D finite element (FE) simulations and a Simulink/Matlab model have been implemented to investigate the dynamic behavior of the system. Although it is challenging to computationally investigate the behavior of the split rotor at different operating conditions due to complex torque interactions, altering the relative angular position of the free-to-rotate rotor on a shaft, the proposed method might eliminate the complex implementation of mechanical field weakening apparatus for PM electrical machines. Thus, a PM machine with split rotor would be used over a wide speed range without excessive voltages at high speeds in fault tolerant aerospace applications.
永磁体电机的分裂转子概念
本文讨论了一种用于永磁电机的磁场弱化方法。该方法可作为安全关键应用中复杂机械场弱化方法的替代方法。所开发的概念是基于分体式转子,其中永磁转子被分成两部分,以实现两种状态的磁场激励;最大通量输出或最小通量输出,取决于转子部件之间的对齐,在轴上有一定程度的自由旋转。永磁体(PM)电机的定子通过分裂的转子部分暴露出两个磁通量。因此,永磁励磁的固定性质可以通过这个概念来改变,以实现更宽的速度范围,这是高速永磁电机的一个关键问题。通过三维有限元仿真和Simulink/Matlab模型研究了该系统的动态特性。虽然由于复杂的扭矩相互作用,改变自由旋转转子在轴上的相对角位置,计算研究分裂转子在不同工作条件下的行为具有挑战性,但所提出的方法可以消除PM电机机械场减弱装置的复杂实现。因此,在容错航空航天应用中,具有分裂转子的PM机器将在很宽的速度范围内使用,而不会在高速下产生过高的电压。
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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