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Evaluation on Structural Performance of Two-nodal Rotary Frictional Component

2절점 회전형 마찰요소의 구조성능 평가

  • Kim, Do-Hyun (Dept. of Architecture & Interior Design Gyeonggi College of Science and Technology) ;
  • Kim, Ji-Young (Technology Development Team. Daewoo Institute of Construction Technology, Daewoo E&C) ;
  • Kim, Myeong-Han (Dept. of Architectural Engineering, Mokpo National University)
  • 김도현 (경기과학기술대학교 건축인테리어과) ;
  • 김지영 (대우건설 기술연구원) ;
  • 김명한 (국립목포대학교 건축공학과)
  • Received : 2015.11.30
  • Accepted : 2015.12.17
  • Published : 2015.12.31

Abstract

Various hybrid dampers have been developed in Korea to control the vibration due to a wind and earthquake. In order to minimize the installment space, cost and construction process, the new hybrid friction damper is developed. This hybrid damper is composed of several rotary friction components having two frictional joint. Because of these components, the building vibration due to wind and earthquake can be mitigated by hybrid friction damper. In this paper, various dependency tests were carried out to evaluate on the structural performance of two joint rotational friction component of the hybrid damper. Test results show that two joint rotational components do not depend on a displacement and a frequency of forcing but friction coefficients is reducing as a clamping force is increasing.

Keywords

References

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Cited by

  1. Lateral Cyclic Loading Experiment for Seismic Performance of Two-Storied RC Structure Frame Retrofitted with External Steel Rod Damper vol.10, pp.4, 2015, https://doi.org/10.11004/kosacs.2019.10.4.024