4.7 Article

Simulation and optimization of magnetic negative stiffness dampers

Journal

SENSORS AND ACTUATORS A-PHYSICAL
Volume 259, Issue -, Pages 14-33

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.sna.2017.03.026

Keywords

Magnetic negative stiffness damper; Passive damper; Eddy-current damping; Optimization; Parametric study; Coulombian model

Funding

  1. Research Grants Council of Hong Kong through a GRF [PolyU 152222/14E]
  2. Innovation and Technology Commission of Hong Kong through an ITF grant [ITS/344/14]

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This paper presents the detailed modelling, parametric studies, and optimizations for two recently proposed magnetic negative stiffness dampers (MNSDs). Both dampers are composed of several coaxially arranged permanent magnets and a conductive pipe. The novel MNSDs can efficiently integrate negative stiffness and eddy-current damping in compact and simple configurations. However, the optimal design of MNSDs has never been investigated. Therefore, this paper establishes numerical models for MNSDs, and the accuracy of the model is validated through a comparison with the experimental results. The effects of magnet arrangement and dimensions on the negative stiffness and eddy-current damping characteristics are systematically investigated through parametric studies. The MNSDs are also individually optimized to maximize the negative stiffness and eddy-current damping coefficients. Based on the optimization results, some optimal design formulas are obtained to facilitate the quick design of MNSDs for different vibration suppression applications in the future. (C) 2017 Elsevier B.V. All rights reserved.

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