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Modular Rotor Single Phase Field Excited Flux Switching Machine with Non-Overlapped Windings

机译:带非重叠绕组的模块化转子单相励磁磁通开关机

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This paper aims to propose and compare three new structures of single-phase field excited flux switching machine for pedestal fan application. Conventional six-slot/three-pole salient rotor design has better performance in terms of torque, whilst also having a higher back-EMF and unbalanced electromagnetic forces. Due to the alignment position of the rotor pole with stator teeth, the salient rotor design could not generate torque (called dead zone torque). A new structure having sub-part rotor design has the capability to eliminate dead zone torque. Both the conventional eight-slot/four-pole sub-part rotor design and six-slot/three-pole salient rotor design have an overlapped winding arrangement between armature coil and field excitation coil that depicts high copper losses as well as results in increased size of motor. Additionally, a field excited flux switching machine with a salient structure of the rotor has high flux strength in the stator-core that has considerable impact on high iron losses. Therefore, a novel topology in terms of modular rotor of single-phase field excited flux switching machine with eight-slot/six-pole configuration is proposed, which enable non-overlap arrangement between armature coil and FEC winding that facilitates reduction in the copper losses. The proposed modular rotor design acquires reduced iron losses as well as reduced active rotor mass comparatively to conventional rotor design. It is very persuasive to analyze the range of speed for these rotors to avoid cracks and deformation, the maximum tensile strength (can be measured with principal stress in research) of the rotor analysis is conducted using JMAG. A deterministic optimization technique is implemented to enhance the electromagnetic performance of eight-slot/six-pole modular rotor design. The electromagnetic performance of the conventional sub-part rotor design, doubly salient rotor design, and proposed novel-modular rotor design is analyzed by 3D-finite element analysis (3D-FEA), including flux linkage, flux distribution, flux strength, back-EMF, cogging torque, torque characteristics, iron losses, and efficiency.
机译:本文旨在提出和比较三种用于基座风扇应用的单相励磁磁通切换机的新结构。常规的六槽/三极凸极转子设计在扭矩方面具有更好的性能,同时还具有更高的反电动势和不平衡的电磁力。由于转子极与定子齿的对准位置,转子的突出设计无法产生扭矩(称为死区扭矩)。具有子部件转子设计的新结构具有消除死区转矩的能力。常规的八槽/四极子转子设计和六槽/三极凸转子设计在电枢线圈和励磁线圈之间都有重叠的绕组布置,这表明铜损耗很高,并且导致尺寸增大电机。另外,具有转子显着结构的励磁磁通量开关机在定子铁芯中具有高磁通强度,这对高铁损具有相当大的影响。因此,提出了一种具有八槽/六极配置的单相励磁磁通开关机的模块化转子的新型拓扑结构,该拓扑结构可实现电枢线圈和FEC绕组之间的非重叠布置,从而有助于减少铜损。与常规转子设计相比,提出的模块化转子设计可减少铁损,并减少主动转子的质量。分析这些转子的速度范围以避免裂纹和变形是很有说服力的,使用JMAG进行转子分析的最大抗拉强度(可以在研究中用主应力测量)。确定性优化技术被实施以增强八槽/六极模块化转子设计的电磁性能。通过3D有限元分析(3D-FEA)分析常规子部分转子设计,双凸极转子设计和建议的新型模块化转子设计的电磁性能,包括磁链,磁通分布,磁通强度, EMF,齿槽转矩,转矩特性,铁损和效率。

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