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Study on optimal design of 210kW traction IPMSM considering thermal demagnetization characteristics

机译:考虑热退磁特性的210kW牵引力IPMSM优化设计研究

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This study analyses the permanent magnet (PM) used in the rotor of an interior permanent magnet synchronous motor (IPMSM) used for driving an electric railway vehicle (ERV) in the context of controllable shape, temperature, and external magnetic field. The positioning of the inserted magnets is a degree of freedom in the design of such machines. This paper describes a preliminary analysis using parametric finite-element method performed with the aim of achieving an effective design. Next, features of the experimental design, based on methods such as the central-composition method, Box-Behnken and Taguchi method, are explored to optimise the shape of the high power density. The results are used to produce an optimal design for IPMSMs, with design errors minimized using Maxwell 2D, a commercial program. Furthermore, the demagnetization process is analysed based on the magnetization and demagnetization theory for PM materials in computer simulation. The result of the analysis can be used to calculate the magnetization and demagnetization phenomenon according to the input B-H curve. This paper presents the conditions for demagnetization by the external magnetic field in the driving and stopped states, and proposes a simulation method that can analyse demagnetization phenomena according to each condition and design the IPMSM that maximizes efficiency and torque characteristics. Finally, operational characteristics are analysed in terms of the operation patterns of railway vehicles, and control conditions are deduced to achieve maximum efficiency in all sections. This was experimentally verified.
机译:这项研究分析了在形状,温度和外部磁场可控的情况下,用于驱动电动铁路车辆(ERV)的内部永磁同步电动机(IPMSM)转子中使用的永磁体(PM)。在这种机器的设计中,插入磁体的位置是自由度。本文介绍了使用参数有限元方法进行的初步分析,目的是实现有效的设计。接下来,探索基于中央成分法,Box-Behnken法和Taguchi法等方法的实验设计特征,以优化高功率密度的形状。结果可用于生成IPMSM的最佳设计,并使用商业程序Maxwell 2D将设计错误降至最低。此外,在计算机仿真中,基于永磁材料的磁化和消磁理论分析了消磁过程。分析结果可用于根据输入的B-H曲线计算磁化和退磁现象。本文介绍了在驱动状态和停止状态下通过外部磁场进行退磁的条件,并提出了一种可以根据每种条件分析退磁现象并设计出效率和转矩特性最大化的IPMSM的仿真方法。最后,根据铁路车辆的运行模式分析了运行特性,并推导了控制条件,以在所有区间中实现最大效率。这已通过实验验证。

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