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Magnetic Field Characteristics and Stator Core Losses of High-Speed Permanent Magnet Synchronous Motors

机译:高速永磁同步电动机磁场特性和定子芯损耗

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摘要

This study focuses on the core losses in the stator region of high-speed permanent magnet synchronous motors, magnetic field characteristics in the load region, and variations in iron losses caused by changes in these areas. A two-pole 120 kW high-speed permanent magnet synchronous motor is used as the object of study, and a two-dimensional transient electromagnetic field-variable load circuit combined calculation model is established. Based on electromagnetic field theory, the electromagnetic field of the high-speed permanent magnet synchronous motor under multi-load conditions is calculated using the time-stepping finite element method. The magnetic field distribution of the high-speed permanent magnet synchronous motor under a multi-load condition is obtained, and the variations in iron core losses in different parts of the motor under multi-load conditions are further analyzed. The calculation results show that most of the stator iron core losses are dissipated in the stator yoke. The stator yoke iron loss under the no-load condition exceeds 70% of the total stator iron core loss. The stator yoke iron loss under rated operation conditions exceeds 50% of the total stator iron core loss. The stator loss under rated load operation conditions is higher than that under no-load operation. These observations are sufficient to demonstrate that the running status of high-speed motors is closely related to the stator iron losses, which have significance in determining the reasonable yoke structure of high-speed and high-power motors and the cooling methods of motor stators.
机译:本研究专注于高速永磁同步电动机定子区域中的磁芯损耗,负载区域中的磁场特性,以及由这些区域的变化引起的铁损的变化。使用双极120kW高速永磁同步电动机作为研究对象,建立了二维瞬态电磁场 - 可变负载电路组合计算模型。基于电磁场理论,使用时间步进有限元方法计算多重负荷条件下的高速永磁同步电动机的电磁场。获得了在多负载条件下的高速永磁同步电动机的磁场分布,进一步分析了在多负载条件下不同部分的铁芯损耗的变化。计算结果表明,大多数定子铁芯损耗在定子轭中消散。无负荷条件下的定子轭铁损失超过总定子铁芯损失的70%。额定操作条件下的定子轭铁损失超过总定子铁芯损失的50%。额定负载操作条件下的定子损耗高于空载操作下的损耗。这些观察足以证明高速电动机的运行状态与定子铁损密密切相关,具有重要性,在确定高速电动机的合理轭结构以及电机定子的冷却方法方面具有重要意义。

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