同步磁阻电机自动化设计中的障碍形状和最小转子参数集

G. Pellegrino, F. Cupertino, C. Gerada
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引用次数: 41

摘要

本文基于多目标遗传优化算法和有限元分析,研究了同步磁阻电机转子的设计问题。比较了三种不同类型的屏障几何形状,它们都由一组有限的输入变量描述。本文的目的是研究可获得的性能与不同屏障类型之间的关系。这一分析背后的两个问题是:哪一种几何形状可能会给机器带来最高的扭矩体积比?在输入参数(即计算时间)和性能之间,哪种几何形状是最好的折衷?分析结果表明,利用人工智能可以在合理的时间内设计出同步磁阻电机,获得与文献一致的性能和转子几何形状。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Barriers shapes and minimum set of rotor parameters in the automated design of Synchronous Reluctance machines
The rotor design of Synchronous Reluctance machines is considered in this paper, based on a multi-objective, genetic optimization algorithm and finite element analysis. Three different types of barrier geometries are compared, all described by a limited set of input variables. The aim of the paper is to investigate the relationships between the obtainable performance and the different barrier types. The two questions underlying this analysis are: which is the geometry that can potentially give the machine with the highest torque to volume ratio? Which is the geometry with the best compromise between number of input parameters (i.e. computational time) and performance? The results of the analysis show that Synchronous Reluctance machines can be designed using artificial intelligence in a reasonable time, obtaining adequate performances and rotor geometries consistent with the literature.
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