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    Dynamic Modeling of Large-Scale Magnetorheological Damper Systems for Civil Engineering Applications

    Source: Journal of Engineering Mechanics:;2004:;Volume ( 130 ):;issue: 009
    Author:
    Guangqiang Yang
    ,
    Billie F. Spencer, Jr.
    ,
    Hyung-Jo Jung
    ,
    J. David Carlson
    DOI: 10.1061/(ASCE)0733-9399(2004)130:9(1107)
    Publisher: American Society of Civil Engineers
    Abstract: Magnetorheological (MR) dampers are one of the most promising new devices for structural vibration mitigation. Because of their mechanical simplicity, high dynamic range, low power requirements, large force capacity, and robustness, these devices have been shown to mesh well with earthquake and wind engineering application demands and constraints. Quasistatic models of MR dampers have been investigated by researchers. Although useful for damper design, these models are not sufficient to describe the MR damper behavior under dynamic loading. This paper presents a new dynamic model of the overall MR damper system which is comprised of two parts: (1) a dynamic model of the power supply and (2) a dynamic model of the MR damper. Because previous studies have demonstrated that a current-driven power supply can substantially reduce the MR damper response time, this study employs a current driver to power the MR damper. The operating principles of the current driver, and an appropriate dynamic model are provided. Subsequently, MR damper force response analysis is performed, and a phenomenological model based on the Bouc–Wen model is proposed to estimate the MR damper behavior under dynamic loading. This model accommodates the MR fluid stiction phenomenon, as well as fluid inertial and shear thinning effects. Compared with other types of models based on the Bouc–Wen model, the proposed model has been shown to be more effective, especially in describing the force rolloff in the low velocity region, force overshoots when velocity changes in sign, and two clockwise hysteresis loops at the velocity extremes.
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      Dynamic Modeling of Large-Scale Magnetorheological Damper Systems for Civil Engineering Applications

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    http://yetl.yabesh.ir/yetl1/handle/yetl/85981
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    contributor authorGuangqiang Yang
    contributor authorBillie F. Spencer, Jr.
    contributor authorHyung-Jo Jung
    contributor authorJ. David Carlson
    date accessioned2017-05-08T22:40:27Z
    date available2017-05-08T22:40:27Z
    date copyrightSeptember 2004
    date issued2004
    identifier other%28asce%290733-9399%282004%29130%3A9%281107%29.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/85981
    description abstractMagnetorheological (MR) dampers are one of the most promising new devices for structural vibration mitigation. Because of their mechanical simplicity, high dynamic range, low power requirements, large force capacity, and robustness, these devices have been shown to mesh well with earthquake and wind engineering application demands and constraints. Quasistatic models of MR dampers have been investigated by researchers. Although useful for damper design, these models are not sufficient to describe the MR damper behavior under dynamic loading. This paper presents a new dynamic model of the overall MR damper system which is comprised of two parts: (1) a dynamic model of the power supply and (2) a dynamic model of the MR damper. Because previous studies have demonstrated that a current-driven power supply can substantially reduce the MR damper response time, this study employs a current driver to power the MR damper. The operating principles of the current driver, and an appropriate dynamic model are provided. Subsequently, MR damper force response analysis is performed, and a phenomenological model based on the Bouc–Wen model is proposed to estimate the MR damper behavior under dynamic loading. This model accommodates the MR fluid stiction phenomenon, as well as fluid inertial and shear thinning effects. Compared with other types of models based on the Bouc–Wen model, the proposed model has been shown to be more effective, especially in describing the force rolloff in the low velocity region, force overshoots when velocity changes in sign, and two clockwise hysteresis loops at the velocity extremes.
    publisherAmerican Society of Civil Engineers
    titleDynamic Modeling of Large-Scale Magnetorheological Damper Systems for Civil Engineering Applications
    typeJournal Paper
    journal volume130
    journal issue9
    journal titleJournal of Engineering Mechanics
    identifier doi10.1061/(ASCE)0733-9399(2004)130:9(1107)
    treeJournal of Engineering Mechanics:;2004:;Volume ( 130 ):;issue: 009
    contenttypeFulltext
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