Sliding Mode Active Disturbance Rejection Control for Magnetorheological Impact Buffer System

In the magnetorheological (MR) impact buffer system, the internal or external disturbance of the MR damper is one of the main factors that affect the buffer performance of the system. This study aims to suppress or eliminate the influence of the disturbance of the MR damper. The continuous terminal...

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Main Authors: Bin Wang, Wanjun Wang, Zhaochun Li
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-06-01
Series:Frontiers in Materials
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fmats.2021.682215/full
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spelling doaj-f97a694cb7494f048c1d5286505369be2021-06-01T05:02:00ZengFrontiers Media S.A.Frontiers in Materials2296-80162021-06-01810.3389/fmats.2021.682215682215Sliding Mode Active Disturbance Rejection Control for Magnetorheological Impact Buffer SystemBin WangWanjun WangZhaochun LiIn the magnetorheological (MR) impact buffer system, the internal or external disturbance of the MR damper is one of the main factors that affect the buffer performance of the system. This study aims to suppress or eliminate the influence of the disturbance of the MR damper. The continuous terminal sliding mode control (CTSMC) strategy with a high gain has a strong antidisturbance ability. However, the high gain may cause fluctuation of the damping force of the system. Therefore, a composite control strategy of sliding mode active disturbance rejection control (ADRC) based on an extended state observer (ESO) is proposed in this study. The total disturbance of the system is estimated by the ESO in real time, and the estimated disturbance is used as a feedforward compensation to the controller to reduce the influence of disturbance on the system. The gain of the CTSMC law of the closed-loop system can be reduced. In addition, the Lyapunov stability criterion is used to ensure the stability of the proposed controller. In order to verify the performance of the proposed CTSMC controller on response speed, overshoot, and hysteresis suppression ability, the window function, square wave function, and multistep function are given as the inputs of the control system. To verify the performance of the proposed sliding mode ADRC for the MR impact buffer system, the mechanical model and the control model are established and simulated using MATLAB/Simulink. The simulation results show that the CTSMC controller has the fastest response time and no overshoot and can suppress the hysteresis nonlinearity of the MR device compared with the open-loop control, PID control, and fractional order PID control. The MR impact buffer system with the sliding mode ADRC obtained the minimum peak value of 4350N within the permitted buffer displacement range compared with the other three traditional control methods. That means the proposed control method in this study has the advantage on buffer performance for the MR impact buffer system.https://www.frontiersin.org/articles/10.3389/fmats.2021.682215/fullMR fluid damperdisturbancecontinuous terminal sliding modeactive disturbance rejection controlshock buffer system
collection DOAJ
language English
format Article
sources DOAJ
author Bin Wang
Wanjun Wang
Zhaochun Li
spellingShingle Bin Wang
Wanjun Wang
Zhaochun Li
Sliding Mode Active Disturbance Rejection Control for Magnetorheological Impact Buffer System
Frontiers in Materials
MR fluid damper
disturbance
continuous terminal sliding mode
active disturbance rejection control
shock buffer system
author_facet Bin Wang
Wanjun Wang
Zhaochun Li
author_sort Bin Wang
title Sliding Mode Active Disturbance Rejection Control for Magnetorheological Impact Buffer System
title_short Sliding Mode Active Disturbance Rejection Control for Magnetorheological Impact Buffer System
title_full Sliding Mode Active Disturbance Rejection Control for Magnetorheological Impact Buffer System
title_fullStr Sliding Mode Active Disturbance Rejection Control for Magnetorheological Impact Buffer System
title_full_unstemmed Sliding Mode Active Disturbance Rejection Control for Magnetorheological Impact Buffer System
title_sort sliding mode active disturbance rejection control for magnetorheological impact buffer system
publisher Frontiers Media S.A.
series Frontiers in Materials
issn 2296-8016
publishDate 2021-06-01
description In the magnetorheological (MR) impact buffer system, the internal or external disturbance of the MR damper is one of the main factors that affect the buffer performance of the system. This study aims to suppress or eliminate the influence of the disturbance of the MR damper. The continuous terminal sliding mode control (CTSMC) strategy with a high gain has a strong antidisturbance ability. However, the high gain may cause fluctuation of the damping force of the system. Therefore, a composite control strategy of sliding mode active disturbance rejection control (ADRC) based on an extended state observer (ESO) is proposed in this study. The total disturbance of the system is estimated by the ESO in real time, and the estimated disturbance is used as a feedforward compensation to the controller to reduce the influence of disturbance on the system. The gain of the CTSMC law of the closed-loop system can be reduced. In addition, the Lyapunov stability criterion is used to ensure the stability of the proposed controller. In order to verify the performance of the proposed CTSMC controller on response speed, overshoot, and hysteresis suppression ability, the window function, square wave function, and multistep function are given as the inputs of the control system. To verify the performance of the proposed sliding mode ADRC for the MR impact buffer system, the mechanical model and the control model are established and simulated using MATLAB/Simulink. The simulation results show that the CTSMC controller has the fastest response time and no overshoot and can suppress the hysteresis nonlinearity of the MR device compared with the open-loop control, PID control, and fractional order PID control. The MR impact buffer system with the sliding mode ADRC obtained the minimum peak value of 4350N within the permitted buffer displacement range compared with the other three traditional control methods. That means the proposed control method in this study has the advantage on buffer performance for the MR impact buffer system.
topic MR fluid damper
disturbance
continuous terminal sliding mode
active disturbance rejection control
shock buffer system
url https://www.frontiersin.org/articles/10.3389/fmats.2021.682215/full
work_keys_str_mv AT binwang slidingmodeactivedisturbancerejectioncontrolformagnetorheologicalimpactbuffersystem
AT wanjunwang slidingmodeactivedisturbancerejectioncontrolformagnetorheologicalimpactbuffersystem
AT zhaochunli slidingmodeactivedisturbancerejectioncontrolformagnetorheologicalimpactbuffersystem
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