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    On the Active-Passive Hybrid Control Actions of Structures With Active Constrained Layer Treatments

    Source: Journal of Vibration and Acoustics:;1997:;volume( 119 ):;issue: 004::page 563
    Author:
    W. H. Liao
    ,
    K. W. Wang
    DOI: 10.1115/1.2889763
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: This paper is concerned with the analysis of active and passive hybrid actions in structures with active constrained damping layers (ACL). A system model is derived via Hamilton’s Principle, based on the constitutive equations of the elastic, viscoelastic, and piezoelectric materials. The model converges to a purely active piezotronic system as the thickness of the viscoelastic material (VEM) layer approaches zero. A mixed Galerkin-GHM (Golla-Hughes-McTavish) method is employed to discretize and analyze the model in time domain. With an LQR (linear quadratic regulator) optimal control, the effects of the active constrained layer configuration on the system vibration suppression performance and control effort requirements are investigated. Analysis illustrates that the active piezoelectric action with proper feedback control will always enhance the damping ability of the passive constrained layer. When compared to a purely active configuration, while the viscoelastic layer of the ACL treatment will enhance damping, it will also reduce the direct control authorities (active action transmissibility) from the active source to the host structure. Therefore, whether the ACL treatment is better than a purely active configuration depends on whether the effect of damping enhancement is greater than that of transmissibility reduction caused by the VEM layer. The significance of these effects depends very much on the viscoelastic layer thickness and material properties. With some parameter combinations, the ACL configuration could require more control effort while achieving less vibration reductions compared to a purely active system. Through analyzing the performance and control effort indices, the conditions where this active-passive hybrid approach can outperform both the passive and active configurations are quantified. Based on this study, design guidelines can be set up to effectively integrate the host structure with the piezoelectric and viscoelastic materials, such that a truly beneficial active-passive hybrid control system could be achieved.
    keyword(s): Hybrid control , Anterior cruciate ligament , Damping , Viscoelastic materials , Thickness , Piezoelectric materials , Materials properties , Hamilton's principle , Constitutive equations , Optimal control , Vibration , Vibration suppression , Experimental design AND Feedback ,
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      On the Active-Passive Hybrid Control Actions of Structures With Active Constrained Layer Treatments

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    http://yetl.yabesh.ir/yetl1/handle/yetl/119682
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    contributor authorW. H. Liao
    contributor authorK. W. Wang
    date accessioned2017-05-08T23:55:15Z
    date available2017-05-08T23:55:15Z
    date copyrightOctober, 1997
    date issued1997
    identifier issn1048-9002
    identifier otherJVACEK-28840#563_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/119682
    description abstractThis paper is concerned with the analysis of active and passive hybrid actions in structures with active constrained damping layers (ACL). A system model is derived via Hamilton’s Principle, based on the constitutive equations of the elastic, viscoelastic, and piezoelectric materials. The model converges to a purely active piezotronic system as the thickness of the viscoelastic material (VEM) layer approaches zero. A mixed Galerkin-GHM (Golla-Hughes-McTavish) method is employed to discretize and analyze the model in time domain. With an LQR (linear quadratic regulator) optimal control, the effects of the active constrained layer configuration on the system vibration suppression performance and control effort requirements are investigated. Analysis illustrates that the active piezoelectric action with proper feedback control will always enhance the damping ability of the passive constrained layer. When compared to a purely active configuration, while the viscoelastic layer of the ACL treatment will enhance damping, it will also reduce the direct control authorities (active action transmissibility) from the active source to the host structure. Therefore, whether the ACL treatment is better than a purely active configuration depends on whether the effect of damping enhancement is greater than that of transmissibility reduction caused by the VEM layer. The significance of these effects depends very much on the viscoelastic layer thickness and material properties. With some parameter combinations, the ACL configuration could require more control effort while achieving less vibration reductions compared to a purely active system. Through analyzing the performance and control effort indices, the conditions where this active-passive hybrid approach can outperform both the passive and active configurations are quantified. Based on this study, design guidelines can be set up to effectively integrate the host structure with the piezoelectric and viscoelastic materials, such that a truly beneficial active-passive hybrid control system could be achieved.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleOn the Active-Passive Hybrid Control Actions of Structures With Active Constrained Layer Treatments
    typeJournal Paper
    journal volume119
    journal issue4
    journal titleJournal of Vibration and Acoustics
    identifier doi10.1115/1.2889763
    journal fristpage563
    journal lastpage572
    identifier eissn1528-8927
    keywordsHybrid control
    keywordsAnterior cruciate ligament
    keywordsDamping
    keywordsViscoelastic materials
    keywordsThickness
    keywordsPiezoelectric materials
    keywordsMaterials properties
    keywordsHamilton's principle
    keywordsConstitutive equations
    keywordsOptimal control
    keywordsVibration
    keywordsVibration suppression
    keywordsExperimental design AND Feedback
    treeJournal of Vibration and Acoustics:;1997:;volume( 119 ):;issue: 004
    contenttypeFulltext
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