Barrier Function-Based Adaptive Sliding Mode Control for Application to Vehicle Suspensions

被引:41
作者
Liu, Zhitai [1 ]
Pan, Huihui [1 ]
机构
[1] Harbin Inst Technol, Res Inst Intelligent Control & Syst, Harbin 150001, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
Suspensions (mechanical systems); Uncertainty; Convergence; Sliding mode control; Adaptive systems; Steady-state; Estimation; Barrier function; prescribed performance; time-delay estimation; vehicle suspension systems; PRESCRIBED PERFORMANCE; TRACKING CONTROL; SYSTEMS;
D O I
10.1109/TTE.2020.3043581
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
A barrier function-based adaptive sliding mode control (SMC) strategy is proposed for the vehicle active suspension system in this article. The barrier function-based adaptive law is applied to design the sliding mode controller, which can ensure the finite-time convergence of the suspension system. Meanwhile, the proposed adaptive law can achieve greatly chattering reduction without requiring the prior information of the upper bound of system uncertainties. Furthermore, the time-delay estimation technique is applied to design the simple and efficient model-free controller. Therefore, the proposed controller has the strong robustness against the nonlinearities and uncertainties of the active suspension system, and it is very practical in actual scenarios. In addition, considering the transient and steady-state performance of the active suspension system, a prescribed performance function is adopted to constrain the vehicle displacement with its convergence rate, maximum overshoot, and steady-state value. Finally, compared with the conventional SMC and PD control, comparative experiments of a quarter-car active suspension platform are performed to verify the effectiveness of the proposed strategy.
引用
收藏
页码:2023 / 2033
页数:11
相关论文
共 36 条
[1]   Finite-time tracking control of nth-order chained-form non-holonomic systems in the presence of disturbances [J].
Bayat, Farhad ;
Mobayen, Saleh ;
Javadi, Shamsi .
ISA TRANSACTIONS, 2016, 63 :78-83
[2]  
Franklin G. F., 1997, DIGITAL CONTROL DYNA
[3]   Design of an adaptive super-twisting decoupled terminal sliding mode control scheme for a class of fourth-order systems [J].
Haghighi, Donya Ashtiani ;
Mobayen, Saleh .
ISA TRANSACTIONS, 2018, 75 :216-225
[4]   Global Time-Delay Estimation in Ultrasound Elastography [J].
Hashemi, Hoda Sadat ;
Rivaz, Hassan .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2017, 64 (10) :1625-1636
[5]   Time-Delay Controller Design for Position Control of Autonomous Underwater Vehicle Under Disturbances [J].
Kim, Jongkyoo ;
Joe, Hangil ;
Yu, Son-cheol ;
Lee, Jin S. ;
Kim, Minsung .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2016, 63 (02) :1052-1061
[6]  
Lee J, 2014, IEEE INT CONF ROBOT, P2283, DOI 10.1109/ICRA.2014.6907175
[7]   An Adaptive Gain Dynamics for Time Delay Control Improves Accuracy and Robustness to Significant Payload Changes for Robots [J].
Lee, Junyoung ;
Chang, Pyung Hun ;
Jin, Maolin .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2020, 67 (04) :3076-3085
[8]   Automotive Electrification: The Nonhybrid Story [J].
Lequesne, Bruno .
IEEE TRANSACTIONS ON TRANSPORTATION ELECTRIFICATION, 2015, 1 (01) :40-53
[9]   A sliding mode approach to stabilization of nonlinear Markovian jump singularly perturbed systems [J].
Li, Hongyi ;
Wang, Yueying ;
Yao, Deyin ;
Lu, Renquan .
AUTOMATICA, 2018, 97 :404-413
[10]   Adaptive Fuzzy Fault-Tolerant Control of Nontriangular Structure Nonlinear Systems With Error Constraint [J].
Li, Yongming ;
Ma, Zhiyao ;
Tong, Shaocheng .
IEEE TRANSACTIONS ON FUZZY SYSTEMS, 2018, 26 (04) :2062-2074