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Analysis of wavelet controller for robustness in electronic differential of electric vehicles: an investigation and numerical developments

机译:小波控制器在电动汽车电子差速器鲁棒性分析中的研究与数值发展

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摘要

In road transportation systems, differential plays an important role in preventing the vehicle from slipping on curved tracks. In practice, mechanical differentials are used, but they are bulky because of their increased weight. Moreover, they are not suitable for electric vehicles, especially those employing separate drives for both rear wheels. The electronic differential constitutes recent technological advances in electric vehicle design, enabling better stability and control of a vehicle on curved roads. This article articulates the modeling and simulation of an electronic differential employing a novel wavelet transform controller for two brushless DC motors ensuring drive in two right and left back driving wheels. Further, the proposed work uses a discrete wavelet transform controller to decompose the error between actual and command speed provided by the electronic differential based on throttle and steering angle as the input into frequency components. By scaling these frequency components by their respective gains, the obtained control signal is actually given as input to the motor. To verify the proposal, a set of designed strategies were carried out: a vehicle on a straight road, turning right and turning left. Numerical simulation test results of the controllers are presented and compared for robust performance and stability.
机译:在道路运输系统中,差速器在防止车辆在弯道上打滑方面起着重要作用。在实践中,使用了机械差速器,但是由于它们的重量增加,所以它们体积庞大。而且,它们不适用于电动车辆,特别是对于两个后轮采用单独驱动的车辆。电子差速器构成了电动汽车设计方面的最新技术进步,能够更好地稳定和控制弯道上的车辆。本文阐述了一种电子差速器的建模和仿真,该电子差速器采用新颖的小波变换控制器处理两个无刷直流电动机,以确保在左右两个后驱动轮中进行驱动。此外,提出的工作使用离散小波变换控制器,基于油门和转向角作为频率分量的输入,分解电子差速器提供的实际速度和指令速度之间的误差。通过将这些频率分量按其各自的增益进行缩放,实际上会将获得的控制信号作为输入提供给电动机。为了验证该建议,执行了一组设计策略:车辆在直路上,向右转和向左转。给出了控制器的数值模拟测试结果,并比较了它们的鲁棒性能和稳定性。

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