Model-Free High-Order Sliding Mode Controller for Station-Keeping of an Autonomous Underwater Vehicle in Manipulation Task: Simulations and Experimental Validation

被引:5
作者
Gonzalez-Garcia, Josue [1 ]
Gomez-Espinosa, Alfonso [1 ]
Garcia-Valdovinos, Luis Govinda [2 ]
Salgado-Jimenez, Tomas [2 ]
Cuan-Urquizo, Enrique [1 ]
Cabello, Jesus Arturo Escobedo [1 ]
机构
[1] Tecnol Monterrey, Escuela Ingn & Ciencias, Av Epigmenio Gonzalez 500, Fracc San Pablo 76130, Queretaro, Mexico
[2] Ctr Engn & Ind Dev CIDESI, Energy Div, Queretaro 76125, Mexico
关键词
AUV; station-keeping; SMC; finite-time; OBSERVER; AUV;
D O I
10.3390/s22124347
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
The use of autonomous underwater vehicles (AUVs) has expanded in recent years to include inspection, maintenance, and repair missions. For these tasks, the vehicle must maintain its position while inspections or manipulations are performed. Some station-keeping controllers for AUVs can be found in the literature that exhibits robust performance against external disturbances. However, they are either model-based or require an observer to deal with the disturbances. Moreover, most of them have been evaluated only by numerical simulations. In this paper, the feasibility of a model-free high-order sliding mode controller for the station-keeping problem is validated. The proposed controller was evaluated through numerical simulations and experiments in a semi-Olympic swimming pool, introducing external disturbances that remained unknown to the controller. Results have shown robust performance in terms of the root mean square error (RMSE) of the vehicle position. The simulation resulted in the outstanding station-keeping of the BlueROV2 vehicle, as the tracking errors were kept to zero throughout the simulation, even in the presence of strong ocean currents. The experimental results demonstrated the robustness of the controller, which was able to maintain the RMSE in the range of 1-4 cm for the depth of the vehicle, outperforming related work, even when the disturbance was large enough to produce thruster saturation.
引用
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页数:23
相关论文
共 30 条
[1]  
BlueRobotics, AFF CAP UND ROB
[2]   Comparison of two second-order sliding mode control algorithms for an articulated intervention AUV: Theory and experimental results [J].
Borlaug, Ida-Louise G. ;
Pettersen, Kristin Y. ;
Gravdahl, Jan Tommy .
OCEAN ENGINEERING, 2021, 222
[3]  
Casalino Giuseppe, 2015, IFAC - Papers Online, V48, P1, DOI 10.1016/j.ifacol.2015.06.001
[4]   Robust trajectory tracking of autonomous underwater vehicles using back-stepping control and time delay estimation [J].
Cho, Gun Rae ;
Li, Ji-Hong ;
Park, Daegil ;
Jung, Je Hyung .
OCEAN ENGINEERING, 2020, 201
[5]  
Cieslak P, 2018, IEEE INT C INT ROBOT, P6646, DOI 10.1109/IROS.2018.8593542
[6]   Requirements for Autonomous Underwater Vehicles (AUVs) for scientific data collection in the Laurentian Great Lakes: A questionnaire survey [J].
Dawson, Heather A. ;
Allison, Mark .
JOURNAL OF GREAT LAKES RESEARCH, 2021, 47 (01) :259-265
[7]   Station-Keeping Control of Autonomous and Remotely-Operated Vehicles for Free Floating Manipulation [J].
Ding, Ningning ;
Tang, Yuangui ;
Jiang, Zhibin ;
Bai, Yunfei ;
Liang, Shixun .
JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2021, 9 (11)
[8]   Autonomous docking for Intervention-AUVs using sonar and video-based real-time 3D pose estimation [J].
Evans, J ;
Redmond, P ;
Plakas, C ;
Hamilton, K ;
Lane, D .
OCEANS 2003 MTS/IEEE: CELEBRATING THE PAST...TEAMING TOWARD THE FUTURE, 2003, :2201-2210
[9]  
Fossen T., 2021, Handbook of Marine Craft Hydrodynamics and Motion Control, V2nd
[10]   Experimental Validation of a Model-Free High-Order Sliding Mode Controller with Finite-Time Convergence for Trajectory Tracking of Autonomous Underwater Vehicles [J].
Gonzalez-Garcia, Josue ;
Gomez-Espinosa, Alfonso ;
Garcia-Valdovinos, Luis Govinda ;
Salgado-Jimenez, Tomas ;
Cuan-Urquizo, Enrique ;
Escobedo Cabello, Jesus Arturo .
SENSORS, 2022, 22 (02)