最大转矩控制优化设计,减小轮辐式内嵌式永磁同步电动机齿槽转矩

Yul-kyu Son, K. Hwang, B. Kwon
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引用次数: 11

摘要

针对轮辐式内啮合永磁同步电机的恒转矩区和恒功率区的转矩和效率,提出了通过最大转矩控制有效减小齿槽转矩的优化设计过程。在恒功率区域,随着转矩和效率的增加,显着比的增加幅度大于初始模型。选择恒转矩区2000 rpm(额定转速)和恒功率区4000 rpm(双额定转速)两个点与初始模型进行转矩和效率比较。最大转矩控制由恒转矩区域的最大转矩/安培(MTPA)控制和恒功率区域的磁链弱化(FW)控制组成。在优化设计过程中,采用有限元法提取各电流角处的d轴和q轴电感,分别用于MTPA和FW控制。采用有限元法计算齿槽转矩。然后,采用径向基函数(RBF)和遗传算法(GA)。结果表明,与初始模型相比,效率和转矩均有所提高,齿槽转矩的减小幅度大于初始模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Maximum torque control for optimal design to reduce cogging torque in spoke type interior permanent magnet synchronous motor
This paper proposes the optimal design process to effectively reduce the cogging torque considering the torque and efficiency in constant torque region and constant power region by maximum torque control in spoke type interior permanent magnet synchronous motor (IPMSM). For an increase in torque and efficiency in constant power region, the saliency ratio is increased more than initial model. The two points, 2000 rpm (rated speed) in the constant torque region and 4000 rpm (double rated speed) in the constant power region, are chosen for comparing the torque and efficiency with the initial model. The maximum torque control is composed of maximum torque per ampere (MTPA) control in constant torque region and flux weakening (FW) control in constant power region. In the optimal design process, the d- and q- axis inductances at each current angle are extracted by finite element method (FEM) for MTPA and FW control. The FEM is used to calculate the cogging torque. And then, radial basis function (RBF) and genetic algorithm (GA) are used. The results showed an increase in the efficiency and torque compare to the initial model, and also the cogging torque is decreased more than initial model.
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