Robust Adaptive Cerebellar Model Articulation Controller for 1-DOF Nonlaminated Active Magnetic Bearings

被引:1
作者
Ngoc Hoi Le [1 ,2 ]
Thanh Quyen Ngo [1 ]
Dinh Khoi Hoang [1 ]
Quang Dich Nguyen [2 ]
Duc Thinh Le [2 ]
Tung Lam Nguyen [2 ]
机构
[1] Ind Univ, Ho Chi Minh City, Vietnam
[2] Hanoi Univ Sci & Technol, Hanoi, Vietnam
来源
TEHNICKI VJESNIK-TECHNICAL GAZETTE | 2023年 / 30卷 / 05期
关键词
cerebellar model; electromagnetic bearing; nonlinear external disturbances; robust adaptive control; CONTROL DESIGN;
D O I
10.17559/TV-20220725105224
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This paper presents a robust adaptive cerebellar model articulation controller (RACMAC) for 1-DOF nonlaminated active magnetic bearings (AMBs) to achieve desired positions for the rotor using a robust sliding mode control based. The dynamic model of 1-DOF nonlaminated AMB is introduced in fractional order equations. However, it is challenging to design a controller based on the model's parameters due to undefined components and external disturbances such as eddy current losses in the actuator, external disturbance, variant parameters of the model while operating. In order to tackle the problem, RACMAC, which has a cerebellar model to estimate nonlinear disturbances, is investigated to resolve this problem. Based on this estimation, a robust adaptive controller that approximates the ideal and compensation controllers is calculated. The online parameters of the neural network are adjusted using Lyapunov's stability theory to ensure the stability of system. Simulation results are presented to demonstrate the effectiveness of the proposed controller.The simulation results indicate that the CMAC multiple nonlinear multiple estimators are close to the actual nonlinear disturbance value, and the effectiveness of the proposed RACMAC method compared with the FOPID and SMC controllers has been studied previously.
引用
收藏
页码:1411 / 1418
页数:8
相关论文
共 22 条
[1]  
[Anonymous], 2011, Int. J. Microelectron.Comput. Sci
[2]  
[Anonymous], 1991, Applied Nonlinear Control
[3]  
Baiyu Ou, 2010, 2010 8th IEEE International Conference on Control and Automation (ICCA 2010), P1239, DOI 10.1109/ICCA.2010.5524367
[4]   Optimal fuzzy PID controller design of an active magnetic bearing system based on adaptive genetic algorithms [J].
Chen, Hung-Cheng .
PROCEEDINGS OF 2008 INTERNATIONAL CONFERENCE ON MACHINE LEARNING AND CYBERNETICS, VOLS 1-7, 2008, :2054-2060
[5]   Application of a rule self-regulating fuzzy controller for robotic deburring on unknown contours [J].
Chen, SC ;
Tung, PC .
FUZZY SETS AND SYSTEMS, 2000, 110 (03) :341-350
[6]   An Online Trained Adaptive Neural Network Controller for an Active Magnetic Bearing System [J].
Chen, Seng-Chi ;
Van-Sum Nguyen ;
Le, Dinh-Kha ;
Nguyen Thi Hoai Nam .
2014 INTERNATIONAL SYMPOSIUM ON COMPUTER, CONSUMER AND CONTROL (IS3C 2014), 2014, :741-744
[7]   Robust Nonsingular Terminal Sliding-Mode Control for Nonlinear Magnetic Bearing System [J].
Chen, Syuan-Yi ;
Lin, Faa-Jeng .
IEEE TRANSACTIONS ON CONTROL SYSTEMS TECHNOLOGY, 2011, 19 (03) :636-643
[8]  
Cho H. W, 2011, 2011 INT C EL MACH S, DOI [10.1109/ICEMS.2011.6073910, DOI 10.1109/ICEMS.2011.6073910]
[9]   Neuro-fuzzy active control of rotor suspended on active magnetic bearing [J].
Couzon, P.-Y. ;
Hagopian, J. Der .
JOURNAL OF VIBRATION AND CONTROL, 2007, 13 (04) :365-384
[10]   Modal Tilt/Translate Control and Stability of a Rigid Rotor with Gyroscopics on Active Magnetic Bearings [J].
Dimond, Timothy ;
Allaire, Paul ;
Mushi, Simon ;
Lin, Zongli ;
Yoon, Se Young .
INTERNATIONAL JOURNAL OF ROTATING MACHINERY, 2012, 2012