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      KCI등재 SCIE SCOPUS

      Integrating of Nonlinear Shear Models into Fiber Element for Modeling Seismic Behavior of Reinforced Concrete Coupling Beams, Wall Piers, and Overall Coupled Wall Systems

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      https://www.riss.kr/link?id=A106302685

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      다국어 초록 (Multilingual Abstract)

      Reinforced concrete (RC) coupled wall systems, compared with RC shear wall without opening, have more com-plex nonlinear behavior under the extreme earthquake loads due to the existence of coupling beams. The behavior characteristics induced by nonlinear shear deformation such as shear–flexure interaction, pinching effect, strength and stiffness deterioration are clearly observed in numerous cyclic tests of RC coupling beams and shear walls. To develop an analytical model capable of accurately and efficiently assessing the expected seismic performance of RC coupled wall systems, it is critical to define the appropriate key components models (i.e., nonlinear models of RC wall piers/shear walls and coupling beams). Classic fiber beam element based on the theory of Euler–Bernoulli beam is frequently adopted to simulate the nonlinear responses of slender RC wall piers and coupling beams in the literature because it is able to accurately model the response characters from interaction of axial–bending moment at the section level. However, classic fiber beam element cannot capture the nonlinear behaviors of non-slender structures mainly controlled by nonlinear shear deformation. To overcome this shortcoming, a modified force-based fiber element (MFBFE) including shear effect is introduced and used as the analysis element of non-slender RC coupling beams and shear walls. At the section level, a novel shear model for RC coupling beams and an existed shear model for RC shear walls are respectively added to this fiber element to simulate nonlinear responses of these two key components. The analytical model for RC coupled walls hence is formed through integrating the proposed models of these two key components. The validations with different experimental results of cyclic tests including key compo-nents and structural system reported in the literature using these proposed models are performed. Good agreements are achieved for all of these proposed models via comparisons between predicted results and experimental data.
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      Reinforced concrete (RC) coupled wall systems, compared with RC shear wall without opening, have more com-plex nonlinear behavior under the extreme earthquake loads due to the existence of coupling beams. The behavior characteristics induced by nonlin...

      Reinforced concrete (RC) coupled wall systems, compared with RC shear wall without opening, have more com-plex nonlinear behavior under the extreme earthquake loads due to the existence of coupling beams. The behavior characteristics induced by nonlinear shear deformation such as shear–flexure interaction, pinching effect, strength and stiffness deterioration are clearly observed in numerous cyclic tests of RC coupling beams and shear walls. To develop an analytical model capable of accurately and efficiently assessing the expected seismic performance of RC coupled wall systems, it is critical to define the appropriate key components models (i.e., nonlinear models of RC wall piers/shear walls and coupling beams). Classic fiber beam element based on the theory of Euler–Bernoulli beam is frequently adopted to simulate the nonlinear responses of slender RC wall piers and coupling beams in the literature because it is able to accurately model the response characters from interaction of axial–bending moment at the section level. However, classic fiber beam element cannot capture the nonlinear behaviors of non-slender structures mainly controlled by nonlinear shear deformation. To overcome this shortcoming, a modified force-based fiber element (MFBFE) including shear effect is introduced and used as the analysis element of non-slender RC coupling beams and shear walls. At the section level, a novel shear model for RC coupling beams and an existed shear model for RC shear walls are respectively added to this fiber element to simulate nonlinear responses of these two key components. The analytical model for RC coupled walls hence is formed through integrating the proposed models of these two key components. The validations with different experimental results of cyclic tests including key compo-nents and structural system reported in the literature using these proposed models are performed. Good agreements are achieved for all of these proposed models via comparisons between predicted results and experimental data.

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      참고문헌 (Reference)

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      1 Legeron, F., "Uniaxial confinement model for normal-and high-strength concrete columns" 129 (129): 241-252, 2003

      2 Mander, J. B., "Theoretical stress-strain model for confined concrete" 114 (114): 1804-1826, 1988

      3 Santhakumar, A. R., "The ductility of coupled shear walls" Univ. of Canterbury 1974

      4 Scott, B., "Stress-strain behavior of concrete confined by overlapping hoops at low and high strain rates" 79 (79): 13-27, 1982

      5 Hindi, R. A., "Shear capacity of diagonally reinforced coupling beams" 26 (26): 1437-1446, 2004

      6 Hines E. M., "Seismic performance of hollow rectangular reinforced concrete piers with highly-confined boundary elements phase III: Web crushing tests" Univ. of California 239-, 2002

      7 Galano, L., "Seismic behavior of short coupling beams with different reinforcement layouts" 97 (97): 876-885, 2000

      8 Lehman, D. E., "Seismic behavior of a modern concrete coupled wall" 139 (139): 1371-1381, 2013

      9 Hung, C. C., "Seismic behavior of a coupled wall system with HPFRC materials in critical regions" 137 (137): 1499-1507, 2011

      10 Lequesne, R. D., "Seismic behavior and detailing of high-performance fiber-reinforced concrete coupling beams and coupled wall systems" 139 (139): 1362-1370, 2012

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      22 Hung, C. C., "Modified full operator hybrid simulation algorithm and its application to the seismic response simulation of a composite coupled wall system" 16 (16): 2575-, 2012

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      32 Zhang, H., "Influence of boundary element on seismic behavior of reinforced concrete shear walls" 27 (27): 92-98, 2007

      33 Ibarra, L. F., "Hysteretic models that incorporate strength and stiffness deterioration" 34 (34): 1489-1511, 2005

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      35 Wang T. Y., "Hysteretic behaviour of reinforced concrete framed walls" Univ. of California 1975

      36 Almeida, J. P., "Force-based higher-order beam element with flexural–shear–torsional interaction in 3D frames. Part II : Applications" 89 : 218-235, 2015

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      38 Petrangeli, M., "Fiber element for cyclic bending and shear of RC structures. I : Theory" 125 (125): 994-1001, 1999

      39 Spacone, E., "Fiber beam-column model for non-linear analysis of RC frames : part i. formulation" 25 (25): 711-726, 1996

      40 Lucchini, A., "Failure simulation of shear-critical RC columns with non-ductile detailing under lateral load" 46 (46): 855-874, 2017

      41 Gong, B., "Experimental investigation and full-range analysis of reinforced concrete coupling beams between shear walls" 4 (4): 41-45, 1988

      42 Ozselcuk A. R., "Experimental and analytical studies of coupled wall structures" Univ. of California 1989

      43 Lowes, N. L., "Earthquake response of slender planar concrete walls with modern detailing" 43 : 31-47, 2012

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      47 Eljadei, A. A., "Design of coupled wall structures as evolving structural systems" 73 (73): 100-113, 2014

      48 Hines E. M., "Cyclic tests of structural walls with highly-confined boundary elements" Univ. of California 1995

      49 Han, S. W., "Cyclic performance of precast coupling beams with bundled diagonal reinforcement" 93 : 142-151, 2015

      50 Paulay, T., "Coupling beams of reinforced concrete shear walls" 97 (97): 843-862, 1971

      51 Fox, M. J., "Capacity design of coupled RC walls" 18 (18): 735-758, 2014

      52 Vuran, E., "Capacity and ductility demand estimation procedures for preliminary design of coupled core wall systems of tall buildings" 14 (14): 721-745, 2016

      53 Gong, B., "Behavior of reinforced concrete coupling beams between shear walls under cyclic loading" 9 (9): 34-40, 1988

      54 Lequesne, R. D., "Behavior and design of high-performance fiberreinforced concrete coupling beams and coupled-wall systems" The University of Michigan 2011

      55 Vulcano, A., "Analytical modeling of RC structural walls" 1988

      56 Kabeyasawa, T., "Analysis of the full-scale seven story reinforced concrete test structure: Test PSD3" 1982

      57 Marini, A., "Analysis of reinforced concrete elements including shear effects" 103 (103): 645-655, 2006

      58 Feng, D. C., "An efficient fiber beam-column element considering flexure-shear interaction and anchorage bond-slip effect for cyclic analysis of RC structures" 16 (16): 5425-5452, 2018

      59 Jun, Z., "An analytical approach to predict shear capacity of steel fiber reinforced concrete coupling beams with small span–depth ratio" 171 : 348-361, 2018

      60 Gerin, M., "Accounting for shear in seismic analysis of concrete structures" 2004

      61 "ACI 318-11. Building code requirements for structural concrete and commentary"

      62 Bitar, I., "A comparison of displacement-based Timoshenko multi-fiber beams finite element formulations and elasto-plastic applications" 22 (22): 464-490, 2018

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      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2012-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.81 0.92 1.47
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      1.25 1.17 0.488 0.24
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