电动汽车用永磁同步电机弱磁控制

Xin Zhao, Hui-Wen Liang
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引用次数: 14

摘要

内嵌式永磁同步电动机具有高速运行的特点,可应用于电动汽车。提出了IPMSM在不同转速工况下的电流矢量控制算法。理论分析表明,在恒转矩区采用最大转矩/安培(MTPA)控制策略,在一般弱磁区采用恒流幅值控制策略,在高速区采用最大输入功率弱磁控制策略,可实现永磁同步电动机的最优行为。该算法为IPMSM提供了具有最大效率和转矩能力的鲁棒电流调节。在不同的区域,可以根据不同的控制策略计算出最佳的d轴电流指令。q轴电流命令由转矩命令和d轴电流决定。为了验证所提出的控制算法,设计了一个由速度控制和电流控制两个闭环组成的矢量控制系统来控制IPMSM在不同速度范围内的运行。样机仿真结果表明,采用不同的控制策略,该算法在宽频域具有良好的静态和动态响应。本文介绍了广域IPMSM的工作原理、理论分析和仿真结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Flux-weakening control of permanent magnet synchronous motor using in electric vehicles
Interior permanent magnet synchronous motor (IPMSM) can be applied in electric vehicles for its wide-speed operation. The current vector control algorithm of an IPMSM in different speed operation region over is proposed in this paper. Form the theoretical analyses, the optimal behavior of the IPMSM can be achieved by considering three control strategies: maximum torque per ampere (MTPA) control strategy in constant torque region, constant current amplitude control in general flux-weakening region, and maximum input power flux-weakening control in high-speed region. The algorithm provides robust current regulation with maximum efficiency and torque capability for IPMSM. In different region, the optimum d-axis current command can be calculated according to different control strategy. The q-axis current command is determined from the torque command and d-axis current. In testing the proposed control algorithm, a vector control system, which consists of two closed loops of control: speed control and current control, was developed to control the IPMSM operating in different speed region. Simulation results from a machine prototype show that the algorithm provides good static and dynamic response in wide-speed region with different control strategies. This paper presents the operating principles, theoretical analyses, and simulation results of the IPMSM over wide-speed region.
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