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Comparative Study of Fault-Tolerant Switched-Flux Permanent-Magnet Machines

机译:容错开关磁通永磁电机的比较研究

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摘要

The fault-tolerant capabilities are compared in this paper for the conventional double-layer switched-flux permanent-magnet machine and its single-layer counterparts, i.e., C-core, E-core, and modular. The comparison includes the interturn short-circuit and irreversible demagnetization faults. A combination of Simulink and finite element models is used in the study. Based on the predictions, it is found that the modular topology produces the lowest short-circuit current and also has the best demagnetization withstand capability while the conventional one produces the highest short-circuit current and has the worst demagnetization withstand capability. The frozen permeability method is employed to separate the flux produced by armature current and magnets, and the results showed that, besides the influence of short-circuit current, the available magnet volume and magnetic circuit configuration play an important role in the demagnetization process. It is also found that removing half of the magnets, such as using C-core, E-core, and modular topologies, generally improves the demagnetization withstand capability and also increases the torque per magnet volume. Measured results are also presented to validate the short-circuit current predictions and magnet demagnetization.
机译:本文比较了传统双层开关磁通永磁电机及其单层对应的C型,E型和模块化的容错能力。比较包括匝间短路和不可逆的退磁故障。本研究使用Simulink和有限元模型的组合。根据这些预测,发现模块化拓扑产生的短路电流最低,并且具有最佳的抗退磁能力,而传统拓扑产生的短路电流最高,并且具有最弱的退磁能力。采用冻结磁导率法分离电枢电流和磁体产生的磁通,结果表明,除短路电流的影响外,可用磁体的体积和磁路结构在退磁过程中也起着重要作用。还发现,去除一半的磁体(例如使用C形磁芯,E形磁芯和模块化拓扑结构)通常会提高去磁承受能力,并且还会增加每个磁体体积的转矩。还提供了测量结果,以验证短路电流预测和磁体退磁。

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