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Global Design Optimization Strategy of a Synchronous Reluctance Machine for Light Electric Vehicles

机译:轻型电动车辆同步磁阻机的全局设计优化策略

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Synchronous Reluctance (SynRel) machines are considered a competitive alternative to the induction motors for variable speed drive applications due to their comparable performances and low cost. The absence of rare earth permanent magnets makes them very attractive also in the automotive sector especially for light electric vehicles. The design of SynRel machines has been formalized by many authors in the last three decades but it is still an open challenge since it involves many competitive design objectives and a higher number of geometrical variables compared to other kind of machines. This paper is focused on the joint optimization of both stator and rotor of a SynRel machine with the aim of obtaining the highest torque density with the minimum iron and joule losses as well as smooth torque. The aim is to carry out a machine design that suits best the requirements of a small electric car for urban mobility, i.e. 30 kW with a base speed of 3000 rpm and a maximum speed of 6000 rpm. The proposed optimization strategy is global because it considers a geometry design that takes into account several stator and rotor parameters together. The design method consists in a two steps procedure: in the first stage the torque density and the losses are optimized, while the quality of the torque profile is improved in the second design stage. The results, satisfying the project requirements, are presented and compared to the initial reference machine. Finally a comparison between two design approaches allowing the improvements of the constant power speed range is presented and discussed.
机译:同步磁阻(Synrel)机器被认为是由于其可比性和低成本而具有可变速度驱动应用的感应电动机的竞争替代品。没有稀土永磁体使它们也在汽车领域中非常有吸引力,特别是对于轻型电动车辆。思考机器的设计已经在过去三十年中被许多作者正式化,但它仍然是一个开放的挑战,因为它涉及许多竞争设计目标和与其他机器相比的几何变量较多。本文专注于同步机的两个定子和转子的联合优化,目的是获得最大铁和焦耳损耗以及平滑扭矩的最高扭矩密度。目的是开展机器设计,该机器设计适用于城市移动性的小型电动车的最佳要求,即30 kW,基本速度为3000 rpm,最大速度为6000 rpm。所提出的优化策略是全球性的,因为它考虑了几何设计,该设计将多个定子和转子参数考虑在一起。设计方法包括在两个步骤过程中:在第一阶段中,优化扭矩密度和损耗,而在第二设计阶段的扭矩曲线的质量得到改善。呈现并与初始参考机器相比,提出和比较项目要求的结果。最后提出和讨论了允许改进恒定功率范围的两个设计方法之间的比较。

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