• Title/Summary/Keyword: 기압축 고무스프링

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A Smart Damper Using Magnetic Friction And Precompressed Rubber Springs (자력 마찰과 기압축 고무 스프링을 이용한 스마트 댐퍼)

  • Choi, Eun Soo;Choi, Gyu Chan
    • Journal of Korean Society of Steel Construction
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    • v.28 no.4
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    • pp.223-229
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    • 2016
  • This study proposes a new technology for a smart damper with flag-shaped behavior using the combination of magnetic friction and rubber springs. The magnet provides friction and, thus, energy dissipation, and the rubber springs with precompression contribute to present self-centering capacity of the damper. To verify their performance, this study conducts dynamic tests of magnet frictional dampers and precompressed rubber springs. For the purpose, hexahedron Neodymium (NdFeB) magnets and polyurethane rubber cylinders are used. In the dynamic tests, loading frequency varies from 0.1 to 2.0 Hz. The magnets provide almost perfect rectangular behavior in force-deformation curve. The rubber springs are tested without or with precompression. The rubber springs show larger rigid force with increasing precompression. Lastly, this study discusses combination of rigid-elastic behavior and friction to generate 'flag-shaped' behavior for a smart damper and suggests how to combine the magnets and the rubber springs to obtain the flag-shaped behavior.

Estimation of Compressive Stiffness of Polyurethane Rubber Springs and Its Application (폴리우레탄 고무 스프링의 압축 강성도 추정 및 적용)

  • Choi, Eunsoo;Park, Seungjin;Woo, Daeseung
    • Journal of Korean Society of Steel Construction
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    • v.29 no.3
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    • pp.229-236
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    • 2017
  • The purpose of this study is to investigate the behavior and characteristics of rubber springs and calculate the compressive stiffness by performing dynamic compression tests of rubber springs. In order to carry out the dynamic compression test of rubber spring, total 9 rubber springs were tailored by calculating the shape factor of L80-D55, L90-D58, and L100-D60, and used for the experiments. Experiments were performed by controlling the compression according to the length of the rubber spring, and the compression was increased in the order of 5%, 10%, 15%, 20% and 25% of the strain. From the experimental results, the force-strain curves were obtained and it was confirmed that strength decrease and strength increase phenomenon occurred as the strain increased. In addition, it was confirmed that the decrease of stiffness and the increase of stiffness were clearly observed according to the size and diameter of the rubber spring, and the effective compression stiffness was estimated using the slope of the force-strain curve. By using the effective compressive stiffness, design values that can be used in actual design were presented.