大调速范围内电动汽车用内置式永磁同步牵引电动机

Aparna Chandekar, R. Ugale
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摘要

目前,以电池为动力的电动汽车正在成为传统内燃机的绿色替代品。电动机在低速时需要高的起动转矩,在高速时需要高的功率,在恒功率范围内需要宽的转速范围。本文利用MATLAB/Simulink建立了基于最大转矩/安培(MTPA)和磁链弱化(FW)控制方法的电动汽车内置式永磁同步电动机(IPMSM)仿真模型。电动汽车市场正在迅速增长,IPMSM被认为是最适合这一应用的电机,因为它具有高扭矩电流比,高功率密度和更高的效率。在Simulink中利用d-q参考系中的数学方程对IPMSM进行建模。采用低于基本速度时的MTPA控制和超过额定速度时的FW控制对IPMSM进行了仿真,实现了系统的鲁棒动态响应。采用前馈磁链弱化控制方法,在高速区域产生更大的转矩,提供更宽的恒功率区域。通过对仿真结果的观察,推导并研究了额定转速以下和额定转速以上的速度响应。所建立的模型将有助于根据驱动循环选择适合特定车辆应用的最佳IPMSM参数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Interior Permanent Magnet Synchronous Traction Motor for Electric Vehicle (EV) Application Over Wide Speed Range
Nowadays, electric vehicles (EVs) powered by battery are becoming popular green alternative to traditional internal combustion engines (ICE). High starting torque at lower speeds and high power at higher speed with wide speed range in constant power region is desired for EV motor operation. This paper proposes the simulation model for interior permanent magnet synchronous motor (IPMSM) developed for electric vehicle (EV) traction application with maximum torque per ampere (MTPA) and flux weakening (FW) control approach using MATLAB/Simulink. Electrical vehicle market is increasing rapidly and IPMSM is considered to be most suitable motor for this application due to its high torque to current ratio, high power density and higher efficiency. Modelling of IPMSM in Simulink using the mathematical equations in d-q reference frame is created. The simulation of IPMSM with controlling strategies as MTPA control for below base speed and FW control beyond rated speed is implemented and a robust dynamic response is achieved. Here feedforward flux weakening control method is used which generates larger torque in high-speed region and provides wider constant power region. The speed response below and above the rated speed is developed and studied by observing the simulation results. This developed model will help in selecting the better IPMSM parameters for specific vehicle application according to the drive cycle.
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