Intelligent Control of Flexible Hypersonic Flight Dynamics With Input Dead Zone Using Singular Perturbation Decomposition

被引:17
作者
Xu, Bin [1 ]
Wang, Xia [1 ]
Sun, Fuchun [2 ]
Shi, Zhongke [1 ]
机构
[1] Northwestern Polytech Univ, Sch Automat, Xian 710072, Peoples R China
[2] Tsinghua Univ, Dept Comp Sci & Technol, Beijing 100084, Peoples R China
基金
中国国家自然科学基金; 美国国家科学基金会;
关键词
Vehicle dynamics; Aerodynamics; Perturbation methods; Couplings; Vibrations; Elevators; Uncertainty; Dead-zone input; flexible dynamics; hypersonic flight vehicle (HFV); neural networks (NNs); singular perturbation decomposition (SPD); SLIDING MODE CONTROL; ADAPTIVE-CONTROL; ATTITUDE-CONTROL; CONTROL DESIGN; VEHICLE; TRACKING; UNCERTAINTY; SYSTEMS;
D O I
10.1109/TNNLS.2021.3131578
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
This article studies the robust intelligent control for the longitudinal dynamics of flexible hypersonic flight vehicle with input dead zone. Considering the different time-scale characteristics among the system states, the singular perturbation decomposition is employed to transform the rigid-elastic coupling model into the slow dynamics and the fast dynamics. For the slow dynamics with unknown system nonlinearities, the robust neural control is constructed using the switching mechanism to achieve the coordination between robust design and neural learning. For the time-varying control gain caused by unknown dead-zone input, the stable control is presented with an adaptive estimation design. For the fast dynamics, the sliding mode control is constructed to make the elastic modes stable and convergent. The elevator deflection is obtained by combining the two control signals. The stability of the dynamics is analyzed through the Lyapunov approach and the system tracking errors are bounded. The simulation is conducted to demonstrate the effectiveness of the proposed approach.
引用
收藏
页码:5926 / 5936
页数:11
相关论文
共 46 条
  • [1] Barrier Lyapunov function-based adaptive control for hypersonic flight vehicles
    An, Hao
    Xia, Hongwei
    Wang, Changhong
    [J]. NONLINEAR DYNAMICS, 2017, 88 (03) : 1833 - 1853
  • [2] Bolender M., 2005, AIAA Guidance, Navigation, and Control Conference and Exhibit, DOI [10.2514/6.2005-6255, DOI 10.2514/6.2005-6255]
  • [3] Nonlinear longitudinal dynamical model of an air-breathing hypersonic vehicle
    Bolender, Michael A.
    Doman, David B.
    [J]. JOURNAL OF SPACECRAFT AND ROCKETS, 2007, 44 (02) : 374 - 387
  • [4] An Adaptive Critic Design-Based Fuzzy Neural Controller for Hypersonic Vehicles: Predefined Behavioral Nonaffine Control
    Bu, Xiangwei
    Xiao, Yu
    Lei, Humin
    [J]. IEEE-ASME TRANSACTIONS ON MECHATRONICS, 2019, 24 (04) : 1871 - 1881
  • [5] Robust tracking control of hypersonic flight vehicles: A continuous model-free control approach
    Bu, Xiangwei
    Lei, Humin
    Gao, Yupeng
    [J]. ACTA ASTRONAUTICA, 2019, 161 : 234 - 240
  • [6] Uncertainty modeling and fixed-order controller design for a hypersonic vehicle model
    Buschek, H
    Calise, AJ
    [J]. JOURNAL OF GUIDANCE CONTROL AND DYNAMICS, 1997, 20 (01) : 42 - 48
  • [7] ANALYTICAL AEROPROPULSIVE AEROELASTIC HYPERSONIC VEHICLE MODEL WITH DYNAMIC ANALYSIS
    CHAVEZ, FR
    SCHMIDT, DK
    [J]. JOURNAL OF GUIDANCE CONTROL AND DYNAMICS, 1994, 17 (06) : 1308 - 1319
  • [8] Adaptive Neural Safe Tracking Control Design for a Class of Uncertain Nonlinear Systems With Output Constraints and Disturbances
    Chen, Mou
    Ma, Haoxiang
    Kang, Yu
    Wu, Qingxian
    [J]. IEEE TRANSACTIONS ON CYBERNETICS, 2022, 52 (11) : 12571 - 12582
  • [9] Tracking Flight Control of Quadrotor Based on Disturbance Observer
    Chen, Mou
    Xiong, Shixun
    Wu, Qingxian
    [J]. IEEE TRANSACTIONS ON SYSTEMS MAN CYBERNETICS-SYSTEMS, 2021, 51 (03): : 1414 - 1423
  • [10] Colgren, 2005, P 2005 AIAA GUID NAV, P6256