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Design and optimization of dual-cycled cooling structure for fully-enclosed permanent magnet motor

机译:全封闭式永磁电动机双循环冷却结构的设计与优化

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摘要

For fully-enclosed permanent magnet motor (FEPM), the heat generated inside the rotor is difficult to dissipate, which can deteriorate the function of the permanent magnet and cause the motor performance degradation, especially during the field-weakening operation. A dual-cycled cooling structure is proposed for improving the inner heat transfer condition of the FEPM, which uses outer water and inner air as coolants. The 3D model of the FEPM equipped with water jacket is built and the temperature distribution is analyzed by thermal-fluid numerical analysis and its accuracy is verified by experiments. Based on the results, the rotor axial vent hole (RAVH), stator axial vent hole (SAVH) and air gap are chosen as internal cycled paths. The position of the internal cycled path is set according to the electromagnetic analysis. And the dimension of the internal cycled path is optimized by Taguchi method for better cooling effects which are evaluated through fluid-thermal coupled numerical analysis. The final optimization results indicate that the optimal dual-cycled cooling structure can reduce the maximum temperature inside the motor by 13.5 degrees C, which will suppress the internal temperature and improve the reliability of the FEPM in full operating range.
机译:对于完全封闭的永磁电动机(FEPM),在转子内部产生的热量难以消散,这可以劣化永磁体的功能并导致电动机性能下降,尤其是在弱化操作期间。提出了一种用于改善FEPM的内部传热条件的双循环的冷却结构,其使用外部水和内部空气作为冷却剂。构建了配备水夹克的FEPM的3D模型,通过热流体数值分析分析温度分布,并通过实验验证其精度。基于结果,选择转子轴向通风孔(RAVH),定子轴向通风孔(SAVH)和气隙作为内部循环路径。根据电磁分析设定内部循环路径的位置。通过Taguchi方法优化了内循环路径的尺寸,以便通过流体 - 热耦合数值分析评估的更好的冷却效果。最终的优化结果表明,最佳双循环冷却结构可以将电机内的最大温度降低13.5摄氏度,这将抑制内部温度并提高FEPM在完全操作范围内的可靠性。

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