Experiment, modelling and control of a novel adjustable negative stiffness vibration isolation system
编号:107 访问权限:仅限参会人 更新:2023-05-10 13:45:04 浏览:101次 口头报告

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摘要
Negative stiffness systems have shown promising performance for low-frequency vibration isolation by reducing structure stiffness. However, this approach is still a passive vibration control strategy with a limited control frequency range. Magnetorheological fluid (MRF) and related adjustable devices hold the potential to resolve this issue. In this paper, we present a novel system that parallels a three-spring mechanism and a magnetorheological (MR) damper to enable adjustable negative stiffness vibration isolation. The three-spring mechanism combines springs, cams, and rollers to exhibit negative stiffness, while the MR damper provides adjustable damping force when a varying current is applied. The resulting force-displacement hysteresis curve of the paralleled system demonstrates adjustable stiffness and damping simultaneously. This paper firstly presents the theoretical analysis of the three-spring mechanism to obtain the optimum configuration of the stiffnesses of the springs. The MR damper is then designed and analyzed. Subsequently, the parallel system is manufactured and tested under harmonic excitations with considering different frequencies and amplitudes. The corresponding mechanical model is then formulated according to experimental results. Lastly, the vibration isolation performance of the proposed system is validated through comparative numerical studies based on a three-story building model, considering different control strategies and earthquake inputs.
 
关键词
Negative stiffness,Magnetorheological damper,Vibration control,Semi-active control,Seismic protection
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稿件作者
Shaoqi Li Nanjing Tech University
Shuang Heng Nanjing Tech University
Yunhu Zhou Nanjing Tech University
Huixing Wang Nanjing University of Science and Technology
Yancheng Li University of Technology sydney
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重要日期
  • 会议日期

    06月09日

    2023

    06月12日

    2023

  • 03月15日 2023

    摘要录用通知日期

  • 03月31日 2023

    摘要截稿日期

  • 06月12日 2023

    注册截止日期

  • 09月20日 2023

    初稿截稿日期

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Chongqing University
University of Science and Technology of China
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