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      Evaluation of equivalent friction damping ratios at bearings of welded large-scale domes subjected to earthquakes

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      https://www.riss.kr/link?id=A107815378

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      다국어 초록 (Multilingual Abstract)

      The major sources of damping in steel structures are within the joints and the structural material. For welded large-scale single-layer lattice domes subjected to earthquake ground motions, the stick-slip phenomenon at the bearings is an important source of the energy dissipation. However, it has not been extensively investigated. In this study, the equivalent friction damping ratio (EFDR) at the bearings of a welded large-scale single-layer lattice dome subjected to earthquake ground motions is quantified using an approximate method based on the energy balance concept. The complex friction behavior and energy dissipation between contact surfaces are investigated by employing an equivalent modeling method. The proposed method uses the stick-slip-hook components with a pair of circular isotropic friction surfaces having a variable friction coefficient to model the energy loss at the bearings, and the effect of the normal force on the friction force is also considered. The results show that the EFDR is amplitude-dependent and is related to the intensity of the ground motions; it exhibits complex characteristics that cannot be described by the conventional models for damping ratios. A parametric analysis is performed to investigate in detail the effects of important factors on the EFDR. Finally, the friction damping mechanism at bearings is discussed. This study enables researchers and engineers to have a better understanding of the essential characteristics of friction damping under earthquake ground motions.
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      The major sources of damping in steel structures are within the joints and the structural material. For welded large-scale single-layer lattice domes subjected to earthquake ground motions, the stick-slip phenomenon at the bearings is an important sou...

      The major sources of damping in steel structures are within the joints and the structural material. For welded large-scale single-layer lattice domes subjected to earthquake ground motions, the stick-slip phenomenon at the bearings is an important source of the energy dissipation. However, it has not been extensively investigated. In this study, the equivalent friction damping ratio (EFDR) at the bearings of a welded large-scale single-layer lattice dome subjected to earthquake ground motions is quantified using an approximate method based on the energy balance concept. The complex friction behavior and energy dissipation between contact surfaces are investigated by employing an equivalent modeling method. The proposed method uses the stick-slip-hook components with a pair of circular isotropic friction surfaces having a variable friction coefficient to model the energy loss at the bearings, and the effect of the normal force on the friction force is also considered. The results show that the EFDR is amplitude-dependent and is related to the intensity of the ground motions; it exhibits complex characteristics that cannot be described by the conventional models for damping ratios. A parametric analysis is performed to investigate in detail the effects of important factors on the EFDR. Finally, the friction damping mechanism at bearings is discussed. This study enables researchers and engineers to have a better understanding of the essential characteristics of friction damping under earthquake ground motions.

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      참고문헌 (Reference)

      1 Clarence, W. S., "Vibration and Shock Handbook" CRC Press 2005

      2 Ali Cheraghbak, "Vibration analysis of sandwich beam with nanocomposite facesheets considering structural damping effects" 국제구조공학회 32 (32): 795-806, 2019

      3 Ikuo Tatemichi, "Vibration Tests on a Full-Size Suspen-Dome Structure" SAGE Publications 12 (12): 217-224, 1997

      4 Beards, C. F., "Structural Vibration: Analysis and Damping" Butterworth-Heinemann Elsevier Ltd 1996

      5 Jacobsen, L. S., "Steady forced vibrations as influenced by damping" 52 (52): 169-181, 1930

      6 CSI (Computers and Structures, Inc.), "Perform 3D, Nonlinear Analysis and Performance Assessment for 3D Structures, User Guide, Version 4"

      7 Marco Amabili, "Nonlinear damping in nonlinear vibrations of rectangular plates: Derivation from viscoelasticity and experimental validation" Elsevier BV 118 : 275-292, 2018

      8 J.T. Oden, "Models and computational methods for dynamic friction phenomena" Elsevier BV 52 (52): 527-634, 1985

      9 J. Woodhouse, "LINEAR DAMPING MODELS FOR STRUCTURAL VIBRATION" Elsevier BV 215 (215): 547-569, 1998

      10 George A. Papagiannopoulos, "Jacobsen's equivalent damping concept revisited" Elsevier BV 115 : 82-89, 2018

      1 Clarence, W. S., "Vibration and Shock Handbook" CRC Press 2005

      2 Ali Cheraghbak, "Vibration analysis of sandwich beam with nanocomposite facesheets considering structural damping effects" 국제구조공학회 32 (32): 795-806, 2019

      3 Ikuo Tatemichi, "Vibration Tests on a Full-Size Suspen-Dome Structure" SAGE Publications 12 (12): 217-224, 1997

      4 Beards, C. F., "Structural Vibration: Analysis and Damping" Butterworth-Heinemann Elsevier Ltd 1996

      5 Jacobsen, L. S., "Steady forced vibrations as influenced by damping" 52 (52): 169-181, 1930

      6 CSI (Computers and Structures, Inc.), "Perform 3D, Nonlinear Analysis and Performance Assessment for 3D Structures, User Guide, Version 4"

      7 Marco Amabili, "Nonlinear damping in nonlinear vibrations of rectangular plates: Derivation from viscoelasticity and experimental validation" Elsevier BV 118 : 275-292, 2018

      8 J.T. Oden, "Models and computational methods for dynamic friction phenomena" Elsevier BV 52 (52): 527-634, 1985

      9 J. Woodhouse, "LINEAR DAMPING MODELS FOR STRUCTURAL VIBRATION" Elsevier BV 215 (215): 547-569, 1998

      10 George A. Papagiannopoulos, "Jacobsen's equivalent damping concept revisited" Elsevier BV 115 : 82-89, 2018

      11 Yuanfeng Wang, "Influence of some key factors on material damping of steel beams" 국제구조공학회 49 (49): 285-296, 2014

      12 Wing-Pin Kwan, "Influence of Hysteretic Behavior on Equivalent Period and Damping of Structural Systems" American Society of Civil Engineers (ASCE) 129 (129): 576-585, 2003

      13 George D. Gounaris, "Hysteretic damping of structures vibrating at resonance: An iterative complex eigensolution method based on damping-stress relation" Elsevier BV 85 (85): 1858-1868, 2007

      14 Grigoriev, I. S., "Handbook of Physical Quantities" CRC Press 1997

      15 Han, W.J., "Friction behavior of controlled low strength material–soil interface" 테크노프레스 18 (18): 407-415, 2019

      16 Jun Teng, "Finite element model updating for large span spatial steel structure considering uncertainties" Springer Science and Business Media LLC 17 (17): 857-862, 2010

      17 Majid Anoushehei, "Experimental investigation on hysteretic behavior of rotational friction dampers with new friction materials" 국제구조공학회 24 (24): 239-248, 2017

      18 Lorenza Petrini, "Experimental Verification of Viscous Damping Modeling for Inelastic Time History Analyzes" Informa UK Limited 12 (12): 125-145, 2008

      19 Tao Liu, "Equivalent Viscous Damping of Bilinear Hysteretic Oscillators" American Society of Civil Engineers (ASCE) 141 (141): 06015002-, 2015

      20 H. M. Dwairi, "Equivalent Damping in Support of Direct Displacement-Based Design" Informa UK Limited 11 (11): 512-530, 2007

      21 H.D. Zhang, "Energy-based numerical evaluation for seismic performance of a high-rise steel building" 국제구조공학회 13 (13): 501-519, 2012

      22 Hamed Saffari, "Effects of damping ratio on dynamic increase factor in progressive collapse" 국제구조공학회 22 (22): 677-690, 2016

      23 Fengyuan Yang, "Effect of complex damping on seismic responses of a reticulated dome and shaking table test validation" Elsevier BV 134 : 407-418, 2019

      24 Huidong Zhang, "Displacement-dependent nonlinear damping model in steel buildings with bolted joints" SAGE Publications 22 (22): 1049-1061, 2019

      25 A. Kareem, "Damping in structures: its evaluation and treatment of uncertainty" Elsevier BV 59 (59): 131-157, 1996

      26 Tamura, Y., "Amplitude dependency of damping in buildings and critical tip drift ratio" 1 (1): 1-13, 2012

      27 Shyh-Rong Tzan, "Active structures considering energy dissipation through damping and plastic yielding" Elsevier BV 66 (66): 411-433, 1998

      28 Ersin Demir, "A study on natural frequencies and damping ratios of composite beams with holes" 국제구조공학회 21 (21): 1211-1226, 2016

      29 Yuli Huang, "A damping model for nonlinear dynamic analysis providing uniform damping over a frequency range" Elsevier BV 212 : 101-109, 2019

      30 B.F. Feeny, "A DECREMENT METHOD FOR THE SIMULTANEOUS ESTIMATION OF COULOMB AND VISCOUS FRICTION" Elsevier BV 195 (195): 149-154, 1996

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2021 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-12-01 평가 등재 탈락 (해외등재 학술지 평가)
      2013-10-01 평가 SCOPUS 등재 (등재유지) KCI등재
      2011-01-01 평가 등재후보학술지 유지 (기타) KCI등재후보
      2007-04-09 학회명변경 한글명 : (사)국제구조공학회 -> 국제구조공학회 KCI등재후보
      2005-09-23 학술지명변경 한글명 : 강합성 구조물에 대한 국제저널 -> Steel and Composite Structures, An International Journal KCI등재후보
      2005-09-22 학술지등록 한글명 : 강합성 구조물에 대한 국제저널
      외국어명 : Steel and Composite Structures, An International Journal
      KCI등재후보
      2005-06-16 학회명변경 영문명 : Ternational Association Of Structural Engineering And Mechanics -> International Association of Structural Engineering And Mechanics KCI등재후보
      2002-01-01 평가 SCIE 등재 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 3.1 2.02 2.67
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      2.37 2.24 0.935 0.37
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