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Optimal design and finite element analysis of a high speed, axial-flux permanent magnet synchronous motor

机译:高速轴向磁通永磁同步电动机的优化设计和有限元分析

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Permanent magnet synchronous motors (PMSMs) have been considered in many high-speed applications. Gaining the maximum torque density with minimum losses is the goal of design in such applications. This paper presents the design and optimization of an axial-flux permanent magnet motor with 300 Watt rated at 60,000 rpm. Based on analytical relations of motor design, the specifications and dimensions of motor are determined. Due to special application of designed motor that needs to demanded torque with minimum current and copper losses, dimensions and design specifications of motor is optimized via genetic algorithm. Optimization algorithm determines the optimum value of air gap, permanent magnet flux density, current density and turns number of stator windings. To demonstrate of analytical design and optimization results, using 3-D model of motor in Maxwell software, a finite element analysis is carried out. The simulation results show the significant reduction in RMS current and copper loss at rated torque. There is a good agreement between analytical design and FEM analysis results and it confirms the effectiveness of presented optimization algorithm.
机译:永磁同步电动机(PMSM)已在许多高速应用中被考虑。在此类应用中设计的目标是获得最大的转矩密度和最小的损失。本文介绍了额定功率为60,000 rpm的300瓦轴向磁通永磁电动机的设计和优化。根据电动机设计的解析关系,确定电动机的规格和尺寸。由于设计电动机的特殊应用需要以最小的电流和铜损来要求转矩,因此通过遗传算法对电动机的尺寸和设计规格进行了优化。优化算法确定气隙,永磁通量密度,电流密度和定子绕组匝数的最佳值。为了演示分析设计和优化结果,使用Maxwell软件中的电动机3-D模型进行了有限元分析。仿真结果表明,在额定转矩下,RM​​S电流和铜损显着降低。分析设计与有限元分析结果之间有很好的一致性,并证实了所提出的优化算法的有效性。

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