Robust adaptive three-dimensional trajectory tracking control scheme design for small fixed-wing UAVs☆

被引:6
作者
Yang, Wenlong [1 ]
Shi, Zongying [1 ]
Zhong, Yisheng [1 ]
机构
[1] Tsinghua Univ, Dept Automat, Beijing 100084, Peoples R China
关键词
Robust adaptive control; Hierarchical control; Signal compensation theory; Trajectory tracking; Fixed-wing UAV; PATH-FOLLOWING CONTROL; UNMANNED AERIAL VEHICLES; FLIGHT CONTROL; AIR VEHICLES; SYSTEMS; PERFORMANCE; VELOCITY; GUIDANCE;
D O I
10.1016/j.isatra.2023.06.033
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
This paper aims to tackle the three-dimensional trajectory tracking problems of small fixed-wing unmanned aerial vehicles subject to nonlinearities, uncertainties and wind disturbances via adaptive techniques. The control objective is to efficiently control the thrust and the deflections of control surfaces to ensure the unmanned aerial vehicle arrives at a specified location within a given time frame. However, achieving this goal for small fixed-wing unmanned aerial vehicles can be challenging because the precise dynamic model and several parameters are not accessible, making most existing control strategies unworkable. Motivated by these facts, based on feedback linearization techniques, we derive linear models with equivalent disturbances to describe the translational dynamics without requiring precise aerodynamic force model information. To deal with the dilemmas where the norm bounds of equivalent disturbances depend on control inputs, system states, and unknown disturbances, a novel robust adaptive control strategy is designed for position control. Based on the assumption of two-time separation, the control scheme incorporates two parts, namely, a position controller containing the horizontal-plane and altitude parts and a robust filter-based attitude regulator. Also, to prevent chattering issues, we design a practical and robust adaptive position controller under which the tracking error is ultimately bounded The overall closed-loop stability is theoretically investigated based on the Lyapunov arguments. Hardware-in-loop simulation experiments are performed to testify our developed control scheme. (c) 2023 ISA. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:377 / 391
页数:15
相关论文
共 58 条
  • [1] Global trajectory tracking control of VTOL-UAVs without linear velocity measurements
    Abdessameud, Abdelkader
    Tayebi, Abdelhamid
    [J]. AUTOMATICA, 2010, 46 (06) : 1053 - 1059
  • [2] Performance limitations in reference tracking and path following for nonlinear systems
    Aguiar, A. Pedro
    Hespanha, Joao P.
    Kokotovic, Petar V.
    [J]. AUTOMATICA, 2008, 44 (03) : 598 - 610
  • [3] Robust auto-landing of fixed-wing UAVs using neuro-adaptive design
    Ambati, Pradeep R.
    Padhi, Radhakant
    [J]. CONTROL ENGINEERING PRACTICE, 2017, 60 : 218 - 232
  • [4] Optimal control of a small fixed-wing UAV about concatenated trajectories
    Arifianto, Ony
    Farhood, Mazen
    [J]. CONTROL ENGINEERING PRACTICE, 2015, 40 : 113 - 132
  • [5] Beard R.W., 2012, SMALL UNMANNED AIRCR, DOI DOI 10.1515/9781400840601
  • [6] Decentralized cooperative aerial-surveillance using fixed-wing miniature UAVs
    Beard, Randal W.
    McLain, Timothy W.
    Nelson, Derek B.
    Kingston, Derek
    Johanson, David
    [J]. PROCEEDINGS OF THE IEEE, 2006, 94 (07) : 1306 - 1324
  • [7] Fixed Wing UAV Path Following in Wind With Input Constraints
    Beard, Randal W.
    Ferrin, Jeff
    Humpherys, Jeffrey
    [J]. IEEE TRANSACTIONS ON CONTROL SYSTEMS TECHNOLOGY, 2014, 22 (06) : 2103 - 2117
  • [8] Coordinated target assignment and intercept for unmanned air vehicles
    Beard, RW
    McLain, TW
    Goodrich, MA
    Anderson, EP
    [J]. IEEE TRANSACTIONS ON ROBOTICS AND AUTOMATION, 2002, 18 (06): : 911 - 922
  • [9] Adaptive output feedback control of nonlinear systems using neural networks
    Calise, AJ
    Hovakimyan, N
    Idan, M
    [J]. AUTOMATICA, 2001, 37 (08) : 1201 - 1211
  • [10] A new robust adaptive mixing control for trajectory tracking with improved forward flight of a tilt-rotor UAV
    Cardoso, Daniel N.
    Esteban, Sergio
    Raffo, Guilherme, V
    [J]. ISA TRANSACTIONS, 2021, 110 : 86 - 104