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首页> 外文期刊>Electric Power Applications, IET >Maximisation of power density in permanent magnet machines with the aid of optimisation algorithms
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Maximisation of power density in permanent magnet machines with the aid of optimisation algorithms

机译:借助优化算法最大化永磁电机的功率密度

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摘要

This study considers the design of surface-mounted permanent magnet electrical machines for high-speed applications and proposes a methodology to determine the maximum achievable power density. Power density is usually improved by increasing rotational speed. At high speed, a mechanical retaining system for the rotor magnets must be considered. As the speed increases, the thickness of the retaining sleeve becomes larger, reducing torque capability. There will be an optimal speed at which the output power will be maximised. Both structural and electromagnetic design must be considered simultaneously to properly address this design problem. To simplify the design procedure, static finite-element simulations are used for the electromagnetic analysis and analytical formulae are employed for retaining sleeve sizing. The procedure is aided by multi-objective optimisation algorithms. A case study based on the specification of an aeronautical actuator is presented. The performances that can be obtained using different iron cores, high-grade silicon steel, and cobalt iron steel are compared. Finally, results obtained from transient finite-element electromagnetic and structural analysis are presented to validate the feasibility of the proposed procedure.
机译:这项研究考虑了用于高速应用的表面安装永磁电机的设计,并提出了一种确定最大可实现功率密度的方法。通常通过提高转速来提高功率密度。高速运行时,必须考虑转子磁铁的机械固定系统。随着速度增加,固定套筒的厚度变大,从而降低了扭矩承受能力。将以最佳速度最大化输出功率。必须同时考虑结构设计和电磁设计,才能正确解决此设计问题。为了简化设计过程,将静态有限元模拟用于电磁分析,并使用解析公式来固定套筒尺寸。该过程由多目标优化算法辅助。提出了基于航空执行器规范的案例研究。比较了使用不同铁芯,高级硅钢和钴铁钢可获得的性能。最后,从瞬态有限元电磁和结构分析获得的结果被提出来验证所提出程序的可行性。

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