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Design, Analysis, and Sensorless Control of a Self-Decelerating Permanent-Magnet In-Wheel Motor

机译:自减速永磁轮毂电机的设计,分析和无传感器控制

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摘要

This paper is to propose a new self-decelerating permanent-magnet (PM) in-wheel motor for low-speed and high-torque drive of electric vehicles (EVs). This motor uses sensorless control and integrates advantages of magnetic gear and those of PM machine together while gear inner rotor is removed. The key is the magnetic gear, which can reduce the size of the motor and achieve the similar torque amplification provided by a mechanical gearbox and does not require maintenance or cause breakdown issues. The topology and the operating principle of the proposed in-wheel motor are analyzed; the effects of flux modulated by the magnetic gear and the static characteristics are investigated by using the finite-element analysis. To solve the problems of mechanical sensors, an improved sliding model observer for sensorless control is studied. Then, the evaluation of the system performances is conducted by the simulation based on the MATLAB/Simulink and the experiment based on a prototype. Both the simulation and the experimental results show that the system can provide low-speed high-torque driving for EVs without mechanical gears and sensors.
机译:本文旨在提出一种用于电动汽车(EV)低速和高转矩驱动的新型自减速永磁(PM)轮毂电动机。该电机采用无传感器控制,并且在去除齿轮内转子的同时,将电磁齿轮和永磁电机的优势整合在一起。关键是电磁齿轮,它可以减小电动机的尺寸并实现与机械齿轮箱相似的扭矩放大,并且不需要维护或引起故障。分析了所提出的轮毂电机的拓扑结构和工作原理;通过有限元分析,研究了电磁齿轮调制的磁通量和静态特性的影响。为了解决机械传感器的问题,研究了一种用于无传感器控制的改进的滑模观测器。然后,通过基于MATLAB / Simulink的仿真和基于原型的实验对系统性能进行评估。仿真和实验结果均表明,该系统可在不使用机械齿轮和传感器的情况下为电动汽车提供低速高扭矩驱动。

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