首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D. Journal of Automobile Engineering >Optimal brake torque distribution for a four-wheel-drive hybrid electric vehicle stability enhancement
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Optimal brake torque distribution for a four-wheel-drive hybrid electric vehicle stability enhancement

机译:最佳制动扭矩分配,可增强四轮驱动混合动力电动汽车的稳定性

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摘要

Vehicle stability control logic for a four-wheel-drive hybrid electric vehicle is proposed using the regenerative braking of the rear motor and an electrohydraulic brake (EHB). To obtain the optimal brake torque distribution between the regenerative braking and the EHB torque, a genetic algorithm is used. The genetic algorithm calculates the optimal regenerative braking torque and the optimal EHB torque for the given inputs of the desired yaw moment and road friction coefficient. Based on the optimal brake torque distribution, the vehicle stability control logic proposed generates the desired direct yaw moment to compensate the errors of the side-slip angle and yaw rate by a fuzzy control algorithm corresponding to the driver's steering angle and vehicle velocity. Performance of the vehicle stability control logic is evaluated by comparison of the fixed regenerative braking and the optimal regenerative braking for a single lane change manoeuvre. It is found from the simulation results that the optimal regenerative braking is able to provide the increased recuperation energy compared with the fixed regenerative braking while satisfying the vehicle stability.
机译:提出了一种四轮驱动混合动力电动汽车的车辆稳定性控制逻辑,该逻辑使用后部电动机的再生制动和电液制动(EHB)。为了获得再生制动和EHB转矩之间的最佳制动转矩分配,使用了遗传算法。遗传算法针对所需的横摆力矩和道路摩擦系数的给定输入,计算出最佳的再生制动扭矩和最佳的EHB扭矩。基于最佳制动扭矩分布,提出的车辆稳定性控制逻辑通过与驾驶员的转向角和车速相对应的模糊控制算法,生成所需的直接横摆力矩,以补偿侧滑角和横摆率的误差。车辆稳定性控制逻辑的性能是通过比较单个车道变更操作的固定再生制动和最佳再生制动来评估的。从仿真结果发现,与固定的再生制动相比,最佳的再生制动能够提供增加的再生能量,同时满足车辆稳定性。

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