针对汽车主动前轮转向系统(active front steering,AFS)中的安全控制问题,提出一种基于固定时间非奇异终端滑模的主动前轮转向控制器.将固定时间终端滑模与幂次趋近律相结合设计一种新的固定时间非奇异终端滑模控制器,以实现系统的快速...针对汽车主动前轮转向系统(active front steering,AFS)中的安全控制问题,提出一种基于固定时间非奇异终端滑模的主动前轮转向控制器.将固定时间终端滑模与幂次趋近律相结合设计一种新的固定时间非奇异终端滑模控制器,以实现系统的快速稳定控制和削弱系统稳态时的抖振,使得闭环系统的收敛时间仅取决于滑模面及控制器的参数设计,而与系统的初始值无关.基于Lyapunov稳定性理论验证了闭环系统的稳定性.仿真结果表明,所提固定时间终端滑模控制方法的快速性和稳定性均优于传统滑模控制和PI控制方法.展开更多
In order to improve the yaw stability of the vehicle with active front steering system, an adaptive PID-type fuzzy control scheme is designed to make the yaw rate tracking the desired values as close as possible. A 2-...In order to improve the yaw stability of the vehicle with active front steering system, an adaptive PID-type fuzzy control scheme is designed to make the yaw rate tracking the desired values as close as possible. A 2-DOF vehicle model with active front steering is built firstly, and then the fuzzy PID controller is designed in detail. The simulation investigations of the yaw stability with different steering ma- neuvers are performed. The simulation results show the effectiveness of the fuzzy PID controller for improving the vehicle's yaw stability.展开更多
Vehicle collision avoidance system is a kind of auxiliary driving system based on vehicle active safety,which can assist the driver to take the initiative to avoid obstacles under certain conditions,so as to effective...Vehicle collision avoidance system is a kind of auxiliary driving system based on vehicle active safety,which can assist the driver to take the initiative to avoid obstacles under certain conditions,so as to effectively improve the driving safety of vehicle.This paper presents a collision avoidance system for an autonomous vehicle based on an active front steering,which mainly consists of a path planner and a robust tracking controller.A path planner is designed based on polynomial parameterization optimized by simulated annealing algorithm,which plans an evasive trajectory to bypass the obstacle and avoid crashes.The dynamic models of the AFS system,vehicle as well as the driver model are established,and based on these,a robust tracking controller is proposed,which controls the system to resist external disturbances and work in accordance with the planning trajectory.The proposed collision avoidance system is testified through CarSim and Simulink combined simulation platform.The simulation results show that it can effectively track the planning trajectory,and improve the steering stability and anti-interference performance of the vehicle.展开更多
文摘针对汽车主动前轮转向系统(active front steering,AFS)中的安全控制问题,提出一种基于固定时间非奇异终端滑模的主动前轮转向控制器.将固定时间终端滑模与幂次趋近律相结合设计一种新的固定时间非奇异终端滑模控制器,以实现系统的快速稳定控制和削弱系统稳态时的抖振,使得闭环系统的收敛时间仅取决于滑模面及控制器的参数设计,而与系统的初始值无关.基于Lyapunov稳定性理论验证了闭环系统的稳定性.仿真结果表明,所提固定时间终端滑模控制方法的快速性和稳定性均优于传统滑模控制和PI控制方法.
基金Supported by the National Natural Science Foundation of China (No.50705008)
文摘In order to improve the yaw stability of the vehicle with active front steering system, an adaptive PID-type fuzzy control scheme is designed to make the yaw rate tracking the desired values as close as possible. A 2-DOF vehicle model with active front steering is built firstly, and then the fuzzy PID controller is designed in detail. The simulation investigations of the yaw stability with different steering ma- neuvers are performed. The simulation results show the effectiveness of the fuzzy PID controller for improving the vehicle's yaw stability.
基金supported by the Research Project of Advanced Manufacture Technology for Automobile Parts(Chongqing University of Technology)Ministry of Education(Grant No.2015KLMT04)the National Natural Science Foundation of China(Grant No.51375007 and 51605219)
文摘Vehicle collision avoidance system is a kind of auxiliary driving system based on vehicle active safety,which can assist the driver to take the initiative to avoid obstacles under certain conditions,so as to effectively improve the driving safety of vehicle.This paper presents a collision avoidance system for an autonomous vehicle based on an active front steering,which mainly consists of a path planner and a robust tracking controller.A path planner is designed based on polynomial parameterization optimized by simulated annealing algorithm,which plans an evasive trajectory to bypass the obstacle and avoid crashes.The dynamic models of the AFS system,vehicle as well as the driver model are established,and based on these,a robust tracking controller is proposed,which controls the system to resist external disturbances and work in accordance with the planning trajectory.The proposed collision avoidance system is testified through CarSim and Simulink combined simulation platform.The simulation results show that it can effectively track the planning trajectory,and improve the steering stability and anti-interference performance of the vehicle.