控制理论(社会学)
终端滑动模式
整体滑动模态
执行机构
终端(电信)
理论(学习稳定性)
车辆动力学
滑模控制
电动汽车
力矩(物理)
控制(管理)
模式(计算机接口)
计算机科学
电子稳定控制
偏航
工程类
相(物质)
基础(线性代数)
控制器(灌溉)
最优控制
相平面
控制系统
汽车操纵
控制工程
最优化问题
平面(几何)
汽车工程
作者
Shaobo Lu,Quanxing Wu,Jun Zhang,Bingjun Liu,Zhigang Chu,Wei Yang
标识
DOI:10.1177/09544070241310952
摘要
Aiming at addressing the actuator failure of the distributed drive electric vehicles drive system, this paper introduces an integral term of yaw rate error on the basis of fast terminal sliding mode fault-tolerant controller. Furthermore, a fault-tolerant control method based on integral fast terminal sliding mode is proposed. Given the concurrent optimization objectives of stability and economy, a multi-objective fault-tolerant control allocation method is introduced. To harmonize these objectives, a weight adjustment strategy based on the phase plane method is proposed. By dynamically adjusting the weights of stability and economy, fault-tolerant control is achieved while enhancing vehicle economy. Simulation results demonstrate that the yaw moment derived from the integral fast terminal sliding mode fault-tolerant control minimizes the steady-state error and converges faster, thus enhancing vehicle stability. Notably, the RMSE of vehicle yaw rate is reduced by 15.31% under the condition of double-lane-change on high-adhesion roads. Additionally, the multi-objective fault-tolerant control strategy improves the economy by 4.60% while maintaining the stability of the vehicle, and the proposed weight adjustment strategy effectively realizes the dynamic coordination of stability and economy optimization objectives.
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