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Comparative analysis of eddy current loss in permanent magnet synchronous generator considering PM shape and skew effect for wind power generation

机译:考虑PM形状和偏斜效应的永磁同步发电机涡流损耗的对比分析。

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Summary form only given. This paper analyzes the eddy current loss in permanent magnets (PMs) caused by the armature reaction field of a PM synchronous generator (PMSG) on the basis of three-dimensional finite element (3D FE) analysis. The eddy current loss in PMs is the main source of thermal issues. It can result in the irreversible demagnetization of PMs because of direct thermal conduction. Furthermore, because the eddy current loss significantly increases with increasing output power, accurate analysis is an important issue. The analysis models used and the machine manufactured for the experiment is shown. The machine consists of a stator and PM rotor. The stator is of a slotted type employing concentrated winding, and 1 slot-pitch skew is applied. The PM rotor has multi poles, and chamfered PMs are used. The rotor and stator have identical stack lengths of 101 mm; as a result, no overhang exists. In addition, we applied 3D FE analysis for the eddy current loss analysis of the PMSG. 3D FE analysis was adopted to consider the magnetic field distribution resulting from the armature reaction field in PMs. Because the analysis model applied the stator skew structure mentioned previously, it has a different magnetic field distribution along with axial length in comparison with machines without skew structure. The chamfered PM rotor influences the magnetic distribution along the tangential direction. In particular, edge effects should be thoroughly investigated as the PM demagnetizes relatively easily owing to the concentrated magnetic field at both edges of the PM. The edge effects are due to complicated electromagnetic field phenomena such as fringing flux and leakage flux in coil end turns; therefore, 3D analysis is required to accurately take them into account in the analysis. There are 3 categories of the armature reaction field according to the operation mode. They are the current of motoring mode and that of generating mode in both AC and DC load conditions. - s the back-to-back test is generally applied for evaluating the performance of PM machines, the current in motoring mode is also considered. In this paper, for better understanding, the back-to-back test uses two identical machines: one operated as a motor and the other as a generator. Furthermore, the electrical input power and output power are subtracted to measure the power losses in both machines. Owing to the different harmonic components in each phase current according to the operation modes, their electromagnetic losses have difference, so the losses are also required to be thoroughly investigated as performed. The experimentally measured current according to the operation mode is shown. As the eddy current loss is difficult to measure, it was calculated by FE analysis on the basis of the measured current. Each current characteristic analyzed by FFT is compared. The motoring mode has the highest THD because the employed SVPWM inverter produces a high chopping frequency. Owing to the influence of the harmonic components, the motoring mode has the highest eddy current loss. It can also be confirmed that the skew structure is useful in reducing the eddy current losses. It is clear that the overall value as well as the distribution of eddy current loss requires thorough investigation. In the full paper, the eddy current distribution derived from 3D FE analysis will be presented in detail.
机译:仅提供摘要表格。本文在三维有限元(3D FE)分析的基础上,分析了永磁同步发电机(PMSG)电枢反应场引起的永磁体(PMs)涡流损耗。 PM中的涡流损耗是热问题的主要来源。由于直接的热传导,可能导致PM不可逆退磁。此外,由于涡流损耗随输出功率的增加而显着增加,因此准确的分析是重要的问题。显示了用于实验的分析模型和制造的机器。该机器由定子和永磁转子组成。定子为开槽型,采用集中绕组,并施加了1个开槽间距偏斜。 PM转子具有多极,并使用了倒角的PM。转子和定子的堆叠长度相同,为101 mm;结果,不存在悬突。另外,我们将3D FE分析应用于PMSG的涡流损耗分析。采用3D FE分析来考虑PM中电枢反应场产生的磁场分布。由于分析模型采用了前面提到的定子偏斜结构,因此与没有偏斜结构的电机相比,它具有不同的磁场分布以及轴向长度。倒角的PM转子影响沿切线方向的磁分布。特别是,由于PM的两个边缘处都集中了磁场,因此PM相对容易退磁,因此应彻底研究边缘效应。边缘效应是由于复杂的电磁场现象引起的,例如线圈端匝中的边缘磁通和泄漏磁通;因此,需要3D分析以在分析中准确地将它们考虑在内。根据操作模式,电枢反应场分为3类。在交流和直流负载条件下,它们都是电动模式和发电模式的电流。 -如果通常将背对背测试用于评估永磁电机的性能,则还应考虑电动模式下的电流。在本文中,为了更好地理解,背对背测试使用两台相同的机器:一台作为电动机运行,另一台作为发电机运行。此外,将电输入功率和输出功率相减以测量两台机器中的功率损耗。由于各相电流根据工作模式的不同会产生谐波分量,因此它们的电磁损耗也有所不同,因此在执行时还需要对损耗进行彻底研究。显示了根据工作模式的实验测量电流。由于涡流损耗难以测量,因此根据测量的电流通过有限元分析进行计算。比较通过FFT分析的每个电流特性。由于采用的SVPWM逆变器产生高斩波频率,因此电动模式具有最高THD。由于谐波分量的影响,电动模式具有最高的涡流损耗。还可以证实,偏斜结构对于减小涡流损耗是有用的。显然,总价值以及涡流损耗的分布都需要进行深入研究。在全文中,将详细介绍3D FE分析得出的涡流分布。

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