Quadcopter Robust Adaptive Second Order Sliding Mode Control Based on PID Sliding Surface

被引:84
作者
Ha Le Nhu Ngoc Thanh [1 ]
Hong, Sung Kyung [1 ]
机构
[1] Sejong Univ, Fac Mech & Aerosp Engn, Seoul 143747, South Korea
基金
新加坡国家研究基金会;
关键词
PID sliding surface; second order sliding mode control; quadcopter; disturbance rejection; adaptive control; QUADROTOR HELICOPTER; QUAD-ROTOR; TRACKING; ALTITUDE; ATTITUDE; DESIGN;
D O I
10.1109/ACCESS.2018.2877795
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
We present a robust adaptive second-order sliding mode controller that rejects external disturbances and uncertainties to improve the tracking performance of attitude and altitude in a quadcopter based on a Proportional-Integral-Derivative sliding surface. The algorithm provides a rapid adaptation and strict robustness of the flight control for the vehicle under the effect of perturbations. The proposed controller design is based on the theory of second order sliding mode technique that eliminates the chattering phenomenon present in first-order sliding mode controllers. In addition, we derive an adaptive law from the Lyapunov stability to ensure the robust control for the quadcopter even without knowing the upper bound for disturbances. Applying the same external disturbances, we use a numerical simulation to compare our algorithm to recent alternatives, such as normal adaptive sliding mode control, super-twisting sliding mode control, modified super-twisting sliding mode control, and nonsingular terminal sliding mode control. The results demonstrate the effectiveness of our proposed algorithm.
引用
收藏
页码:66850 / 66860
页数:11
相关论文
共 50 条
[11]   Quadrotor vehicle control via sliding mode controller driven by sliding mode disturbance observer [J].
Besnard, Lenaick ;
Shtessel, Yuri B. ;
Landrum, Brian .
JOURNAL OF THE FRANKLIN INSTITUTE-ENGINEERING AND APPLIED MATHEMATICS, 2012, 349 (02) :658-684
[12]   Indirect adaptive fuzzy sliding mode control: Part II: parameter projection and supervisory control [J].
Chan, PT ;
Rad, AB ;
Wang, J .
FUZZY SETS AND SYSTEMS, 2001, 122 (01) :31-43
[13]   Robust Backstepping Sliding-Mode Control and Observer-Based Fault Estimation for a Quadrotor UAV [J].
Chen, Fuyang ;
Jiang, Rongqiang ;
Zhang, Kangkang ;
Jiang, Bin ;
Tao, Gang .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2016, 63 (08) :5044-5056
[14]   Modeling and robust backstepping sliding mode control with Adaptive RBFNN for a novel coaxial eight-rotor UAV [J].
Peng, Cheng ;
Bai, Yue ;
Gong, Xun ;
Gao, Qingjia ;
Zhao, Changjun ;
Tian, Yantao .
IEEE/CAA Journal of Automatica Sinica, 2015, 2 (01) :56-64
[15]  
Dong W., 2013, World Acad. Sci. Eng. Technol, V7, P901
[16]   Sliding mode control with integral augmented sliding surface: design and experimental application to an electromechanical system [J].
Eker, Ilyas ;
Akinal, Sule A. .
ELECTRICAL ENGINEERING, 2008, 90 (03) :189-197
[17]   An Experimental UAV System for Search and Rescue Challenge [J].
Erdos, David ;
Erdos, Abraham ;
Watkins, Steve E. .
IEEE AEROSPACE AND ELECTRONIC SYSTEMS MAGAZINE, 2013, 28 (05) :32-37
[18]  
Fraundorfer F, 2012, IEEE INT C INT ROBOT, P4557, DOI 10.1109/IROS.2012.6385934
[19]   Adaptive Backstepping Sliding Mode Trajectory Tracking Control for a Quad-rotor [J].
Gong, Xun ;
Hou, Zhi-Cheng ;
Zhao, Chang-Jun ;
Bai, Yue ;
Tian, Yan-Tao .
INTERNATIONAL JOURNAL OF AUTOMATION AND COMPUTING, 2012, 9 (05) :555-560
[20]   Completion of Collision Avoidance Control Algorithm for Multicopters Based on Geometrical Constraints [J].
Ha Le Nhu Ngoc Thanh ;
Hong, Sung Kyung .
IEEE ACCESS, 2018, 6 :27111-27126