3D Structure Line Start Synchronous Reluctance Motor Design Based on Selective Laser Melting of 3D Printing.

P. Huang, M. Tsai, I. Jiang
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引用次数: 9

Abstract

Due to the features of high efficiency, high torque, and without using permanent magnets, the synchronous reluctance motors (SynRMs) have become popular in industry. Such advantages are contributed by the design of the rotor barriers and ribs that the flux flow path are arranged as shown in Fig. 1(a). However, the requirements of motors usually are not just high efficiency but some other more operation capabilities such as low vibration and easy start. Unfortunately, as compared with the industrial most commonly used induction motors (IMs), position sensors are additionally required for initiating starting of SynRMs [1], [2]. Moreover, the barriers and ribs of SynRMs may increase the risk of structure deformation as rotation. Hence, this paper proposes a novel design of applying the 3D bionic structure in the SynRMs with new flux path design to solve the said problems. Further, the additive manufacturing (3D printing) is adopted to fabricate the complicated prototype of the rotor.
基于选择性激光熔化3D打印的三维结构线启动同步磁阻电机设计。
同步磁阻电动机由于具有高效率、高转矩和不使用永磁体的特点,在工业上得到了广泛的应用。由于转子屏障和肋的设计,使得磁通流路的布置如图1(a)所示。然而,对电机的要求通常不仅仅是高效率,而是一些其他更多的操作能力,如低振动和容易启动。不幸的是,与工业上最常用的感应电机(IMs)相比,synrm的启动还需要位置传感器[1],[2]。此外,synrm的屏障和肋可能会增加结构旋转变形的风险。因此,本文提出了一种将三维仿生结构应用于synrm的新设计,并采用新的磁通路径设计来解决上述问题。在此基础上,采用增材制造技术(3D打印)制作了复杂的转子原型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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