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Design of Dual Purpose No-Voltage Combined Windings for Bearingless Motors

机译:无轴承电动机的两用无电压组合绕组设计

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摘要

A winding design approach is proposed to create a single motor winding, which is able to produce both radial force and torque. This approach can be used to design new bearingless motors, as well as to transform conventional motor designs into bearingless motors by simply modifying the winding end connections. The resulting winding has two sets of terminal connections, one for torque and one for suspension. The suspension terminals experience no motional-electromotive force when the rotor is centered, which means that the suspension drive can have a low voltage rating and that rotor vibrations can be passively dampened by simply short-circuiting the suspension terminals. Bearingless motors that use these so-called dual purpose no voltage windings can be designed to have higher torque density and lower losses associated with the magnetic suspension operation than traditional bearingless motors, which utilize separate torque and suspension windings. It will be shown that many popular winding designs, including fractional-slot and concentrated windings, can be realized as dual purpose no-voltage windings. The proposed approach applies to traditional pole-pair bearingless motors, as well as the bearingless consequent-pole and ac homopolar motors. Fractional-slot motor winding theory is used to derive the new winding requirements and a generalized design procedure; example designs are explored through finite element analysis and experimental results from a hardware prototype of a bearingless ac homopolar motor.
机译:提出了一种绕组设计方法来创建单个电动机绕组,该电动机绕组能够产生径向力和转矩。这种方法可用于设计新的无轴承电动机,以及通过简单地更改绕组端部连接将传统的电动机设计转换为无轴承电动机。产生的绕组具有两组端子连接,一组用于扭矩,另一组用于悬挂。悬架端子在转子居中时不会受到任何电动势,这意味着悬架驱动器的额定电压可能较低,并且只需将悬架端子短路即可被动减小转子的振动。与使用分开的转矩绕组和悬架绕组的传统无轴承电动机相比,使用这些所谓的两用无电压绕组的无轴承电动机可以设计成具有更高的转矩密度和与磁悬浮操作相关的更低的损耗。可以看出,许多流行的绕组设计,包括分数槽绕组和集中绕组,都可以实现为两用无电压绕组。提出的方法适用于传统的极对无轴承电动机,以及无轴承结果极和交流同极电动机。分数槽电动机绕组理论用于得出新的绕组要求和通用的设计过程。通过有限元分析和无轴承交流同极电机硬件原型的实验结果,探索了示例设计。

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