Torque Vectoring on Front Wheel Drive Vehicle with Hub Motors

Abdulhamid Han Doğru, Buse Yildirim, Rafet Can Umutlu
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Abstract

Nowadays electric vehicles (EVs) which are equivalent to fossil fuel vehicles and run on more environmentally friendly fuels, have become popular in the automotive industry. So EVs have very common use areas in that field. Driving stability and safety are also of great importance in these widely used vehicles. In this sense, torque vectoring (TV) appears as the most modern approach.TV control systems provide the distribution of torque to the wheels by the effect of the yaw moment. The application of torque vectoring in vehicles reduces power losses in the motor driver and the vehicle’s power consumption. Using efficient torque vectoring algorithms for electric vehicles, this research describes existing and emerging vehicle technology related to yaw moment management and traction control. The article provides the allocation of wheel torques for a two-wheel drive all electric vehicle with individually controlled engines. Lateral dynamics and moment dynamics were used in the construction of this torque allocation. In addition, the lateral velocity and yaw rate of the vehicle related to the specified inputs were calculated from the nonlinear front wheel drive vehicle model which was designed by MATLAB. The reference yaw rate and the yaw rate, which is the output of the system, were compared and the error in between and the Proportional Integral Derivative (PID) controller were fed. The hub motor, which is widely used in electric vehicles and is easy to control, was used as the engine in the system. While increasing the control on this vehicle, the designed torque vectoring system also increased the stability and driving performance during turning.
轮毂电机前轮驱动车辆的转矩矢量分析
如今,电动汽车(ev)已经成为汽车行业的热门产品,它相当于化石燃料汽车,使用更环保的燃料。所以电动汽车在这个领域有很普遍的应用领域。在这些广泛使用的车辆中,行驶稳定性和安全性也非常重要。从这个意义上说,扭矩矢量(TV)是最现代的方法。电视控制系统通过偏航力矩的影响向车轮提供扭矩的分配。转矩矢量在车辆中的应用减少了电机驱动器的功率损耗和车辆的功耗。本研究利用高效的电动汽车转矩矢量算法,描述了与偏航力矩管理和牵引力控制相关的现有和新兴汽车技术。本文提供了两轮驱动全电动汽车的车轮扭矩分配与单独控制的发动机。横向动力学和力矩动力学应用于该扭矩分配的构建。此外,利用MATLAB设计的非线性前轮驱动车辆模型,计算了车辆与指定输入相关的横向速度和横摆角速度。将系统输出的横摆角速度与参考横摆角速度进行比较,并将误差与比例积分导数(PID)控制器进行比较。采用电动汽车中应用广泛且易于控制的轮毂电机作为系统的发动机。设计的转矩矢量控制系统在提高车辆控制性能的同时,也提高了车辆转弯时的稳定性和行驶性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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