Vibration Suppression Control for a Flexible Beam with Sliding Mode Observer

In this study, the vibration suppression of smart structure is performed by using piezoelectric patch structure. The smart structure consists of a beam, as a host structure, and piezoelectric patches, attached to the surface of the beam, as actuation and sensing elements. Two sources of instabilitie...

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Main Authors: Shibly Ahmed Al-Samarraie, Mohsin N. Hamzah, Imad Abdulhussein Abdulsahib
Format: Article
Language:English
Published: Al-Nahrain Journal for Engineering Sciences 2017-01-01
Series:مجلة النهرين للعلوم الهندسية
Online Access:https://nahje.com/index.php/main/article/view/26
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author Shibly Ahmed Al-Samarraie
Mohsin N. Hamzah
Imad Abdulhussein Abdulsahib
author_facet Shibly Ahmed Al-Samarraie
Mohsin N. Hamzah
Imad Abdulhussein Abdulsahib
author_sort Shibly Ahmed Al-Samarraie
collection DOAJ
description In this study, the vibration suppression of smart structure is performed by using piezoelectric patch structure. The smart structure consists of a beam, as a host structure, and piezoelectric patches, attached to the surface of the beam, as actuation and sensing elements. Two sources of instabilities, namely, the observer spillover and the control spillover, are considered in the current design of the controller based on a reduced order model of the large scale system. To design a controller, that will attenuate the vibration, the balance realization is used to select the reduced order model that is most controllable and observable. Eight state is selected for the reduced model in the present work. The sliding mode observer, which based on the equivalent control, is designed to estimate eight states of the reduced model where the state estimation error is proved bounded. By using the estimated state via sliding mode observer an optimal LQR controller is designed that attenuate the vibration of a smart cantilever beam using piezoelectric element. To overcome the control spillover problem, an avoidance condition was derive, that will ensure the asymptotic stability for the proposed vibration control design. The numerical simulations are preformed to test the vibration attenuation ability of the proposed optimal control. For 10 mm initial tip displacement, the piezoelectric actuator found able to reduce the tip displacement to about 1.3 mm after 15s, while it equal to 7 mm with the open loop case. The simulations show, also, that the optimal control action is performed with minimum effort where only 30 voltage is required while piezoelectric actuator is saturated at 200 voltage.
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spelling doaj.art-e2d491aa7ca74e6bba5e6ffce89f485e2022-12-21T20:09:08ZengAl-Nahrain Journal for Engineering Sciencesمجلة النهرين للعلوم الهندسية2521-91542521-91622017-01-0119226Vibration Suppression Control for a Flexible Beam with Sliding Mode ObserverShibly Ahmed Al-Samarraie0Mohsin N. Hamzah1Imad Abdulhussein Abdulsahib2Control & Systems Engineering Department, University of TechnologyMechanical Eng. Dep., University of TechnologyMechanical Eng. Dep., University of TechnologyIn this study, the vibration suppression of smart structure is performed by using piezoelectric patch structure. The smart structure consists of a beam, as a host structure, and piezoelectric patches, attached to the surface of the beam, as actuation and sensing elements. Two sources of instabilities, namely, the observer spillover and the control spillover, are considered in the current design of the controller based on a reduced order model of the large scale system. To design a controller, that will attenuate the vibration, the balance realization is used to select the reduced order model that is most controllable and observable. Eight state is selected for the reduced model in the present work. The sliding mode observer, which based on the equivalent control, is designed to estimate eight states of the reduced model where the state estimation error is proved bounded. By using the estimated state via sliding mode observer an optimal LQR controller is designed that attenuate the vibration of a smart cantilever beam using piezoelectric element. To overcome the control spillover problem, an avoidance condition was derive, that will ensure the asymptotic stability for the proposed vibration control design. The numerical simulations are preformed to test the vibration attenuation ability of the proposed optimal control. For 10 mm initial tip displacement, the piezoelectric actuator found able to reduce the tip displacement to about 1.3 mm after 15s, while it equal to 7 mm with the open loop case. The simulations show, also, that the optimal control action is performed with minimum effort where only 30 voltage is required while piezoelectric actuator is saturated at 200 voltage.https://nahje.com/index.php/main/article/view/26
spellingShingle Shibly Ahmed Al-Samarraie
Mohsin N. Hamzah
Imad Abdulhussein Abdulsahib
Vibration Suppression Control for a Flexible Beam with Sliding Mode Observer
مجلة النهرين للعلوم الهندسية
title Vibration Suppression Control for a Flexible Beam with Sliding Mode Observer
title_full Vibration Suppression Control for a Flexible Beam with Sliding Mode Observer
title_fullStr Vibration Suppression Control for a Flexible Beam with Sliding Mode Observer
title_full_unstemmed Vibration Suppression Control for a Flexible Beam with Sliding Mode Observer
title_short Vibration Suppression Control for a Flexible Beam with Sliding Mode Observer
title_sort vibration suppression control for a flexible beam with sliding mode observer
url https://nahje.com/index.php/main/article/view/26
work_keys_str_mv AT shiblyahmedalsamarraie vibrationsuppressioncontrolforaflexiblebeamwithslidingmodeobserver
AT mohsinnhamzah vibrationsuppressioncontrolforaflexiblebeamwithslidingmodeobserver
AT imadabdulhusseinabdulsahib vibrationsuppressioncontrolforaflexiblebeamwithslidingmodeobserver