共查询到19条相似文献,搜索用时 171 毫秒
1.
2.
为实现不同驾驶工况下精确的车速与轨迹跟踪,提出了一种驾驶机器人车辆多模式切换控制方法。通过分析驾驶机器人操纵自动挡车辆踏板与转向盘的运动,建立了驾驶机器人加速与制动机械腿和转向机械手的运动学模型和车辆纵横向动力学模型。在此基础上,设计了加速/制动机械腿切换控制器、模糊PID/模糊PID+Bang-Bang车速切换控制器和模糊PID/模糊PID+Bang-Bang转向切换控制器。加速/制动机械腿切换控制器以目标车辆加速度为切换规则,协调控制加速和制动机械腿,车速切换控制器以车速误差作为Bang-Bang控制器的模式决策准则和模糊PID控制器的输入,转向切换控制器以轨迹跟踪侧向误差作为Bang-Bang控制器的模式决策输入,并以当前与下一个控制时刻横摆角速度之差作为模糊PID控制器的输入。仿真和试验结果验证了所提出方法的有效性。 相似文献
3.
为实现对无人驾驶机器人机械腿运动的精确控制,提出了一种模糊监督控制方法。通过对驾驶机器人机械腿操纵自动挡汽车油门/制动踏板的运动分析,描述了机械腿各杆件的运动学关系,并建立了机械腿的拉格朗日动力学模型。在此基础上,设计了一种模糊监督控制器,并通过Lyapunov稳定性分析原理,验证了跟踪误差的收敛性,保证了机械腿对位移跟踪的稳定性。模糊监督控制器以机械腿的位移跟踪误差及误差变化率为输入,位移跟踪过程中,实时监测跟踪误差的变化趋势,当误差不超过给定值时,模糊控制器单独作用,当误差超出给定值,采用模糊监督控制器。最后,设计了一种油门/制动机械腿切换控制器,搭建了油门/制动机械腿车速跟踪仿真模型,仿真结果与实车试验数据比较,验证了提出方法的有效性。 相似文献
4.
《汽车工程》2018,(10)
为实现不同驾驶工况下精确的车速与轨迹跟踪,提出了一种驾驶机器人车辆多模式切换控制方法。通过分析驾驶机器人操纵自动挡车辆踏板与转向盘的运动,建立了驾驶机器人加速与制动机械腿和转向机械手的运动学模型和车辆纵横向动力学模型。在此基础上,设计了加速/制动机械腿切换控制器、模糊PID/模糊PID+Bang-Bang车速切换控制器和模糊PID/模糊PID+Bang-Bang转向切换控制器。加速/制动机械腿切换控制器以目标车辆加速度为切换规则,协调控制加速和制动机械腿,车速切换控制器以车速误差作为Bang-Bang控制器的模式决策准则和模糊PID控制器的输入,转向切换控制器以轨迹跟踪侧向误差作为Bang-Bang控制器的模式决策输入,并以当前与下一个控制时刻横摆角速度之差作为模糊PID控制器的输入。仿真和试验结果验证了所提出方法的有效性。 相似文献
5.
为了减小长期自动驾驶过程中制动性能下降带来的影响,提出了一种驾驶机器人车辆动态制动力矩补偿方法。首先建立了以车速和制动踏板力为输入,制动力矩为输出的驾驶机器人车辆制动性能离线自学习模型。然后考虑到驾驶机器人车辆长期自动驾驶导致离线自学习模型可靠性下降,建立了以车速和制动踏板力为输入,制动力矩为输出的扩展自回归在线辨识模型,并采用模糊变遗忘因子递推最小二乘法进行参数辨识。模糊变遗忘因子递推最小二乘法通过引入遗忘因子的方式,对数据施加时变加权系数,以避免出现数据增长导致的数据饱和现象。模糊变遗忘因子控制器以制动力矩辨识误差为输入,经模糊规则推理实时输出合适的遗忘因子进行参数辨识,能够有效均衡驾驶机器人车辆制动性能参数辨识的稳定性与收敛速度。驾驶机器人车辆自动驾驶过程中,根据当前车速与目标车速的大小计算出所需的制动力矩,加上反馈回来的制动力矩误差,并结合当前时刻的车速,利用制动性能离线自学习模型与机械腿逆向运动学模型实时计算出制动电机输出位移量,实现对驾驶机器人车辆制动力矩的在线补偿。仿真与试验结果表明:利用所提出的方法对车辆动态制动力矩进行辨识时,通过调节遗忘因子,辨识结果能够快速收敛且辨识误差较小。在此基础上,控制驾驶机器人车辆进行纵向车速跟踪时,能够有效减小制动性能下降造成的影响,保证控制车速跟踪误差在±1km·h-1之内。 相似文献
6.
针对汽车线控电液制动系统建立了单轮车辆模型,研制了一种新的状态观测器对车速进行估算,试验结果表明该方法正确实用.采用切换增益模糊调节的滑模控制算法对非线性时变的车辆实施基于最佳滑移率的制动控制,在Matlab/Simulink中的仿真结果和验证试验都表明在汽车线控制动系统应用该算法是可行、有效的,在该算法的控制下汽车可获得比一般滑模控制更好的制动性能. 相似文献
7.
8.
9.
李洪涛赵韩黄康刘生强 《汽车工程》2018,(4):443-449
针对纯电动汽车制动避撞系统,提出了基于反馈线性化的跟车距离、速度跟踪误差的滑模控制方法;考虑了模型非线性、系统参数不确定性和外部干扰的因素,建立车辆纵向动力学模型;采用指数趋近律的控制方法,设计了一种双输入双输出的汽车避撞系统控制器;并进行了跟车场景下制动避撞控制器的仿真。结果表明:该控制器避撞控制效果明显,在保证汽车行驶的舒适性的同时,跟车过程的跟踪误差小。 相似文献
10.
《汽车工程》2015,(9)
提出了一种并联式混合动力汽车防抱死制动系统(ABS)和能量回馈制动的协调控制策略。针对防抱死制动系统的强非线性和时变特征,设计了基于滑移率切换面的ABS滑模变结构控制器。为削弱传统滑模控制中的颤振和补偿模型的不确定性,采用指数趋近率方法来改善滑模运动段的动态品质和鲁棒性;能量回馈制动系统中,电池SOC、电机转速和制动强度等动态参数的影响较大,因此,采用T-S模糊逻辑控制策略动态调节电机制动转矩来提高制动能量的回收率。在Matlab/Simulink环境中建立整车制动系统模型,对所提出的协调控制策略在紧急制动和NEDC工况下进行仿真。结果表明:该策略在保证车辆制动稳定性的同时,能有效地提高制动能量的回收率,且具有较强的鲁棒性。 相似文献
11.
Javad Marzbanrad Iman Tahbaz-zadeh Moghaddam 《Vehicle System Dynamics: International Journal of Vehicle Mechanics and Mobility》2016,54(9):1291-1316
The main purpose of this paper is to design a self-tuning control algorithm for an adaptive cruise control (ACC) system that can adapt its behaviour to variations of vehicle dynamics and uncertain road grade. To this aim, short-time linear quadratic form (STLQF) estimation technique is developed so as to track simultaneously the trend of the time-varying parameters of vehicle longitudinal dynamics with a small delay. These parameters are vehicle mass, road grade and aerodynamic drag-area coefficient. Next, the values of estimated parameters are used to tune the throttle and brake control inputs and to regulate the throttle/brake switching logic that governs the throttle and brake switching. The performance of the designed STLQF-based self-tuning control (STLQF-STC) algorithm for ACC system is compared with the conventional method based on fixed control structure regarding the speed/distance tracking control modes. Simulation results show that the proposed control algorithm improves the performance of throttle and brake controllers, providing more comfort while travelling, enhancing driving safety and giving a satisfactory performance in the presence of different payloads and road grade variations. 相似文献
12.
13.
14.
15.
16.
Peng Hang Xinbo Chen Shude Fang Fengmei Luo 《International Journal of Automotive Technology》2017,18(5):785-797
A four-wheel-independent-steering (4WIS) electric vehicle (EV) with steer-by-wire (SBW) system is proposed in this paper. The fast terminal sliding mode controller (FTSMC) is designed for the SBW system to suppress external disturbances. Taking unstructured and structured uncertainties into consideration, a robust controller is designed for the 4WIS EV utilizing μ synthesis approach and the controller order reduction is implemented based on Hankel-Norm approximation. Since sideslip angle is the feedback signal of robust controller and it is hard to measure, the extended Kalman filter (EKF) is employed to estimate sideslip angle. To evaluate the vehicle performance with the designed control system, step and sinusoidal steering maneuvers are simulated and analyzed. Simulation results show that the designed control system have good tracking ability, strong robust stability and good robust performance to improve vehicle stability and handing performance. 相似文献
17.
18.
J. -S. Jo S. -H. You J. Y. Joeng K. I. Lee K. Yi 《International Journal of Automotive Technology》2008,9(5):571-576
The Vehicle stability control system is an active safety system designed to prevent accidents from occurring and to stabilize
dynamic maneuvers of a vehicle by generating an artificial yaw moment using differential brakes. In this paper, in order to
enhance vehicle steerability, lateral stability, and roll stability, each reference yaw rate is designed and combined into
a target yaw rate depending on the driving situation. A yaw rate controller is designed to track the target yaw rate based
on sliding mode control theory. To generate the total yaw moment required from the proposed yaw rate controller, each brake
pressure is properly distributed with effective control wheel decision. Estimators are developed to identify the roll angle
and body sideslip angle of a vehicle based on the simplified roll dynamics model and parameter adaptation approach. The performance
of the proposed vehicle stability control system and estimation algorithms is verified with simulation results and experimental
results. 相似文献
19.
A traction control system (TCS) is used to improve the acceleration performance on slippery roads by preventing excessive wheel slip. In this paper, a new traction control system using the integrated control of gear shifting and throttle actuation is developed for vehicles with automatic transmissions. In the design of the slip controller, by means of a differential manifold transformation, a slip control system with nonlinearities and uncertainties is transformed into a linear system, and a sliding mode controller is applied for the purpose of increasing the robustness of the system. Next, to achieve the required driving torque, the optimal throttle and gear position, maps are constructed based on dynamic programming. The simulation results indicate that the present traction control system can improve the acceleration performance of an automatic transmission vehicle for various types of road conditions. 相似文献