吉林大学学报(工学版) ›› 2026, Vol. 56 ›› Issue (3): 851-859.doi: 10.13229/j.cnki.jdxbgxb.20241003
• 通信与控制工程 • 上一篇
Yao FU(
),Chun-shui ZHAN,Ke LIU(
)
摘要:
针对路径跟踪中控制器与执行器之间的通信延时、车辆系统的强非线性以及控制器的输出约束的问题,本文以智能汽车为研究对象,提出了一种考虑通信延时的非线性路径跟踪控制器,以提高汽车路径跟踪性能。首先,建立二自由度车辆模型,利用“魔术公式”建立轮胎模型,建立具有通信延时的非线性路径跟踪模型;其次,根据控制器输出约束,利用反步调节函数,设计了非线性鲁棒控制器,满足系统性能指标和鲁棒性要求;最后,分别在正弦工况与双移线工况下,通过MATLAB/Simulink进行仿真验证路径跟踪性能。结果表明:本文提出的控制器的路径跟踪在正弦工况下横向误差的均方根值较PID方法及MPC方法分别降低0.061 9和0.010 1,双移线工况下分别降低0.097 2和0.034 7;当引入干扰时,本文控制器鲁棒性优于PID及MPC。
中图分类号:
| [1] | Lei Y L, Wen G Z, Fu Y, et al. Trajectory-following of a 4WID-4WIS vehicle via feedforward-backstepping sliding-mode control[J]. P I Mech Eng D-J Aut, 2022, 236(2/3): 322-333. |
| [2] | 谢宪毅, 王禹涵, 金立生, 等. 基于改变控制时域时间步长的智能车轨迹跟踪控制[J]. 吉林大学学报: 工学版, 2024, 54(3): 620-630. |
| Xie Xian-yi, Wang Yu-han, Jin Li-sheng, Intelligent vehicle trajectory tracking control based on adjusting step size of control horizon[J]. Journal of Jilin University (Engineering and Technology Edition), 2024, 54(3): 620-630. | |
| [3] | 常胜, 刘宏飞, 邹乃威. 汽车变曲率路径循迹H_∞回路成形鲁棒控制[J]. 吉林大学学报:工学版, 2024, 54(8): 2141-2148. |
| Chang Sheng, Liu Hong-fei, Zou Nai-wei. H∞ loop shaping robust control of vehicle tracking on variable curvature curve[J]. Journal of Jilin University (Engineering and Technology Edition), 2024, 54(8): 2141-2148. | |
| [4] | 靳欣宇, 张军, 刘元盛, 等. 基于Stanley算法的自适应最优预瞄模型研究[J]. 计算机工程, 2018, 44(7): 42-46. |
| Jin Xin-yu, Zhang Jun, Liu Yuan-sheng. Research on adaptive optimal pre-scanning model based on Stanley's algorithm[J]. Computer Engineering, 2018, 44(7): 42-46. | |
| [5] | Melkou L, Rezoug A, Hamerlain M. PID-Terminal sliding mode control of aircraft UAV[C]∥Proceedings of the 8th UKSim-AMSS European Modelling Symposium on Computer Modelling and Simulation, New York, The United States, 2014: 21-23. |
| [6] | Zhai L, Wang C P, Hou Y H, et al. MPC-based integrated control of trajectory tracking and handling stability for intelligent driving vehicle driven by four hub motor[J]. IEEE Trans Veh Technol, 2022, 71(3): 2668-2680. |
| [7] | Pang H, Liu M H, Hu C, et al. Practical nonlinear model predictive controller design for trajectory tracking of unmanned vehicles[J]. Electronics, 2022, 11(7): 18-25. |
| [8] | Zhang J X, Xu K D, Wang Q G. Prescribed performance tracking control of time-delay nonlinear systems with output constraints[J]. IEEE-CAA J Automatica Sin, 2024, 11(7): 1557-1565. |
| [9] | Zhang Z Q, Xu B, Tan C, et al. Adaptive control of uncertain nonlinear time-delay systems with external disturbance[J]. IEEE Trans Syst Man Cybern-Syst, 2022, 52(2): 1288-1295. |
| [10] | Sun W W, Wu Y, Lv X Y. Adaptive neural network control for full-state constrained robotic manipulator with actuator saturation and time-varying delays[J]. IEEE Trans Neural Netw Learn Syst, 2022, 33(8): 3331-3342. |
| [11] | Peng C, Yue D, Tian Y C. New approach on robust delay-dependent h∞ control for uncertain t-s fuzzy systems with interval time-varying delay[J]. IEEE Trans Fuzzy Syst, 2009, 17(4): 890-900. |
| [12] | Tang H Y, Wang Q Y, Feng X Y. Robust stochastic control for high-speed trains with nonlinearity, parametric uncertainty, and multiple time-varying delays[J]. IEEE Trans Intell Transp Syst, 2018, 19(4): 1027-1037. |
| [13] | Jiao X H, Shen T L. Adaptive feedback control of nonlinear time-delay systems: The LaSalle-Razumikhin-based approach[J]. IEEE Trans Autom Control, 2005, 50(11): 1909-1913. |
| [14] | Wang T C, Luo X X, Li W Q. Razumikhin-type approach on state feedback of stochastic high-order nonlinear systems with time-varying delay[J]. Int J Robust Nonlinear Control, 2017, 27(16): 3124-3134. |
| [15] | Sachan K, Padhi R. Barrier lyapunov function based output-constrained control of nonlinear euler-lagrange systems[C]∥Proceedings of the 15th International Conference on Control, Automation, Robotics and Vision. Singapore, Singapore, 2018: 18-33. |
| [16] | Song M S, Zhang F, Huang B X, et al. Anti-disturbance control for tethered aircraft system with deferred output constraints[J]. IEEE-CAA J Automatica Sin, 2023, 10(2): 474-485. |
| [17] | Zhao K, Wen C Y, Song Y D, et al. Adaptive uniform performance control of strict-feedback nonlinear systems with time-varying control gain[J]. IEEE-CAA J Automatica Sin, 2023, 10(2): 451-461. |
| [18] | Mayne D Q. Model predictive control: recent developments and future promise[J]. Automatica, 2014, 50(12): 2967-2986. |
| [19] | Biegler L T. A perspective on nonlinear model predictive control[J]. Korean Journal of Chemical Engineering, 2021, 38(7): 1317-1332. |
| [20] | Alavilli A, Nguyen K, Schoedel S, et al. TinyMPC: model-predictive control on resource-constrained microcontrollers[C]∥IEEE International Conference on Robotics and Automation, Yokohama, Japan, 2023: 1-7. |
| [21] | 郑香美, 高兴旺, 赵志忠. 基于"魔术公式"的轮胎动力学仿真分析[J]. 机械与电子, 2012(9): 16-20. |
| Zheng Xiang-mei, Gao Xing-wang, Zhao Zhi-zhong. Simulation analysis of tire dynamics based on the "magic formula"[J]. Machinery and Electronics, 2012(9): 16-20. |
| [1] | 赵洪乾,李海岩,张城铭,崔世海,贺丽娟,吕文乐. 面向智能安全的中国50th百分位男性体征行人数字模型开发及应用[J]. 吉林大学学报(工学版), 2026, 56(3): 779-792. |
| [2] | 李军,杨飞帆,龚胜,周科宇. 基于视觉的轻量化路面异常检测算法[J]. 吉林大学学报(工学版), 2026, 56(2): 488-496. |
| [3] | 张向文,王子豪. 电动汽车制动模式切换过程电液协调控制策略[J]. 吉林大学学报(工学版), 2026, 56(1): 31-43. |
| [4] | 高镇海,鲍明喜,赵睿,唐明弘,高菲. 基于目标锚点驱动的多模态轨迹预测方法[J]. 吉林大学学报(工学版), 2026, 56(1): 21-30. |
| [5] | 兰巍,周政,王冠宇,王伟,张苗苗. 基于机器学习的汽车设计智能拟合方法[J]. 吉林大学学报(工学版), 2025, 55(9): 2858-2863. |
| [6] | 霍震,金立生,华强,贺阳. 基于边缘特征引导的智能汽车语义分割方法[J]. 吉林大学学报(工学版), 2025, 55(9): 3032-3041. |
| [7] | 李寿涛,贾湘怡,朱军,郭洪艳,于丁力. 基于Level-K的智能驾驶汽车无信控交叉路口决策方法[J]. 吉林大学学报(工学版), 2025, 55(9): 3069-3078. |
| [8] | 孙天骏,杨惠喆,蔡荣贵,冯嘉仪,冉锐,刘斌. 面向纯电动汽车自适应巡航系统的人性化起停控制策略[J]. 吉林大学学报(工学版), 2025, 55(9): 2847-2857. |
| [9] | 朱冰,孟鹏翔,刘斌,韩嘉懿,赵健,陈志成,宋东鉴,陶晓文. 基于交通环境信息的虚拟车道线拟合方法[J]. 吉林大学学报(工学版), 2025, 55(9): 2935-2945. |
| [10] | 赵俊武,曲婷,胡云峰. 基于自适应采样的智能车辆轨迹规划方法[J]. 吉林大学学报(工学版), 2025, 55(8): 2802-2816. |
| [11] | 于贵申,陈鑫,唐悦,赵春晖,牛艾佳,柴辉,那景新. 激光表面处理对铝-铝粘接接头剪切强度的影响[J]. 吉林大学学报(工学版), 2025, 55(8): 2555-2569. |
| [12] | 高金武,孙少龙,王舜尧,高炳钊. 基于电机转矩补偿的增程器转速波动抑制策略[J]. 吉林大学学报(工学版), 2025, 55(8): 2475-2486. |
| [13] | 贾美霞,胡建军,肖凤. 基于多软件联合的车用电机变工况多物理场仿真方法[J]. 吉林大学学报(工学版), 2025, 55(6): 1862-1872. |
| [14] | 宋学伟,于泽平,肖阳,王德平,袁泉,李欣卓,郑迦文. 锂离子电池老化后性能变化研究进展[J]. 吉林大学学报(工学版), 2025, 55(6): 1817-1833. |
| [15] | 肖纯,易子淳,周炳寅,张少睿. 基于改进鸽群优化算法的燃料电池汽车模糊能量管理策略[J]. 吉林大学学报(工学版), 2025, 55(6): 1873-1882. |
|
||