• 제목/요약/키워드: Lateral drift ratio

검색결과 82건 처리시간 0.024초

횡력저항시스템에 따른 비정형 초고층건물 내진성능평가 (Seismic Performance Evaluation of Complex-Shaped Tall Buildings by Lateral Resisting Systems)

  • 윤우석;이동훈;조창희;김은성;이동철;김종호
    • 한국전산구조공학회논문집
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    • 제25권6호
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    • pp.513-523
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    • 2012
  • 본 연구는 횡력저항시스템별로 프로토타입 모델을 선정하고 지진지역과 비정형성에 따른 내진성능 영향력을 검토하였다. 프로토타입 모델은 다이아그리드 시스템과 브레이스튜브 시스템 그리고 아웃리거 시스템을 선정하였다. 또한 각 횡력저항시스템별 평면 비틀림 각도를 $0^{\circ}$, $1^{\circ}$($1.5^{\circ}$), $2^{\circ}$($3^{\circ}$) 씩 변화하여 내진성능을 검토하였다. 지진지역은 강진지역(LA), 약진지역(Boston)을 선정하였다. 선형응답해석은 프로토타입 모델의 풍변위, 고유주기를 검토하였다. Non-Linear Response History(NLRH) 해석에서는 밑면전단력, 층간변위비를 검토하였다. 검토결과 다이아그리드 시스템과 브레이스튜브 시스템 그리고 아웃리거 시스템 모두 평면 비틀림 각도가 증가할수록 건물 전체의 강성이 줄어들었다. 또한 평면 비틀림 각도가 증가할수록 풍변위와 고유주기 결과가 증가하고 건물 전체의 강성이 줄어들어 밑면전단력이 감소하였다. 끝으로, NLRH 해석 결과 강진과 약진지역 모두 Tall Building Initiative(TBI)의 Maximum Considered Earthquake(MCE)수준의 층간변위비 제한값 0.045를 만족하여 허용범위내의 내진성능을 만족하고 있는 것으로 나타났다.

편심코어를 가지는 저층 철근콘크리트 필로티 건물의 내진성능 (Seismic Performance of Low-rise Piloti RC Buildings with Eccentric Core)

  • 김성용;김경남;윤태호
    • 한국산학기술학회논문지
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    • 제21권10호
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    • pp.490-498
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    • 2020
  • 본 논문에서는 편심코아를 가지는 저층 필로티 건물의 내진거동을 해석하고 결과를 분석하였다. 본 논문에서는 저층 필로티 건물의 시공사례 중 KBC2005기준에 준하여 설계된 편심코어를 가지는 건물들의 설계자료를 수집하여, 대표적인 편심 필로티 건물을 프로토타입으로 선정하여 KDS41기준에 준하여 내진거동을 해석하고 결과를 분석하였다. 연구결과 편심코어를 가지는 필로티 건물의 경우 X방향은 소성거동, Y방향은 탄성거동을 하는 것으로 평가 되었다. 연구대상 건물의 층간 변위를 확인한 결과 최대변위 δ=67.51mm로 코어가 평면 중심에 위치하는 경우보다 층간 변위량이 더 큰 것으로 평가 되었다. 해석결과에서 층간 변위 비율은 법적 규준 이내인 것으로 평가되었다. 또한 변위 비율은 1층 필로티 구간이 2~4층 부분보다 확연히 높은 걸로 평가 되었으며, 저층 필로티 구조물의 경우 1층 라멘조 부분이 횡력에 취약한 것으로 평가되었다. 편심코어로 인하여 구조물 전체의 강성중심이 질량중심과 이격되어 있어 코어 반대쪽의 필로티 기둥에서 항복과 소성힌지 발생이 시작되므로 내진설계와 내진보강시 이에 대한 고려가 필요하다. 따라서, 편심코어를 가지는 저층 필로티 건물의 내진설계 및 내진보강시 필로티 구조의 횡변위 감소와 횡력저항능력을 보강할 필요가 있다.

Seismic behavior of full-scale square concrete filled steel tubular columns under high and varied axial compressions

  • Phan, Hao D.;Lin, Ker-Chun
    • Earthquakes and Structures
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    • 제18권6호
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    • pp.677-689
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    • 2020
  • A building structural system of moment resisting frame (MRF) with concrete filled steel tubular (CFST) columns and wide flange H beams, is one of the most conveniently constructed structural systems. However, there were few studies on evaluating seismic performance of full-scale CFST columns under high axial compression. In addition, some existing famous design codes propose various limits of width-to-thickness ratio (B/t) for steel tubes of the ductile CFST composite members. This study was intended to investigate the seismic behavior of CFST columns under high axial load compression. Four full-scale square CFST column specimens with a B/t of 42 were carried out that were subjected to horizontal cyclic-reversal loads combined with constantly light, medium and high axial loads and with a linearly varied axial load, respectively. Test results revealed that shear strength and deformation capacity of the columns significantly decreased when the axial compression exceeded 0.35 times the nominal compression strength of a CFST column, P0. It was obvious that the higher the axial compression, the lower both the shear strength and deformation capacities were, and the earlier and faster the shear strength degradation occurred. It was found as well that higher axial compressions resulted in larger initial lateral stiffness and faster degradation of post-yield lateral stiffness. Meanwhile, the lower axial compressions led to better energy dissipation capacities with larger cumulative energy. Moreover, the study implied that under axial compressions greater than 0.35P0, the CFST column specimens with B/t limits recommended by AISC 360 (2016), ACI 318 (2014), AIJ (2008) and EC4 (2004) codes do not provide ultimate interstory drift ratio of more than 3% radian, and only the limit in ACI 318 (2014) code satisfies this requirement when axial compression does not exceed 0.35P0.

목재 접합부의 강도특성 및 장기 내력 평가 (I) - 소나무재의 Bo1t 및 Drift pin 접합부 능력(耐力) 성능 평가 - (Studies on Evaluation for Long-term Loading of Composite Wood-joint and Characteristics of Joint Strength (I) - The strength properties of mechanical joints of Pinus densiflora with drift pin and bolt -)

  • 홍순일;황원중;김은삼;진광성
    • Journal of the Korean Wood Science and Technology
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    • 제29권4호
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    • pp.1-8
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    • 2001
  • 본 실험은 강판삽입형에 드리프트 핀, 볼트를 이용한 2가지 형태의 접합부의 강도 특성을 검토하였다. 하중 방향은 섬유평행방향 하중 (0도 하중)과 섬유직교방향 하중 (90도 하중)을 가하여 하중방향의 차이 및 접합구에 따른 강도 특성을 비교하였다. 소나무재의 강판 삽입의 드리프트 핀, 볼트 인장형 전단강도 실험에서 다음과 같은 결과를 얻었다. 1. 같은 단거리의 섬유평행방향 하중시 최대하중은 접합구의 직경이 증가함에 따라 증가되는 경향을 보였으며, 90도 하중인 경우 드라프트핀, 볼트 접합부는 2가지 접합구 직경(10 mm, 12 mm)에서 모든 소나무 시편이 할렬파괴 되었다. 2. 하중-변형 곡선의 초기 직선영역을 나타내는 직선과 접합구 직경의 5% 만큼을 횡축의 정방향으로 평행 이동시킨 접합부의 항복하중(Py)과 최대 하중비의 증가 정도는 0도 하중의 경우가 높고, 볼트의 접합에서 높았다. 또한 세장비가 증가될수록 높은 경향을 나타냈다. 3 항복 추정식으로 구한 항복하중과 실험값에서 5% 차감한 항복하중은 볼트 접합부에 비해 드리프트 핀 접합부가 추정치와 실험치가 잘 일치되었다.

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Seismic vulnerability evaluation of a 32-story reinforced concrete building

  • Memari, A.M.;Motlagh, A.R. Yazdani;Akhtari, M.;Scanlon, A.;Ashtiany, M. Ghafory
    • Structural Engineering and Mechanics
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    • 제7권1호
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    • pp.1-18
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    • 1999
  • Seismic evaluation of a 32-story reinforced concrete framed tube building is performed by checking damageability, safety, and toughness limit states. The evaluation is based on Standard 2800 (Iranian seismic code) which recommends equivalent lateral static force, modal superposition, or time history dynamic analysis methods to be applied. A three dimensional linearly elastic model checked by ambient vibration test results is used for the evaluation. Accelerograms of three earthquakes as well as linearly elastic design response spectra are used for dynamic analysis. Damageability is checked by considering story drift ratios. Safety is evaluated by comparing demands and capacities at the story and element force levels. Finally, toughness is studied in terms of curvature ductility of members. The paper explains the methodology selected and various aspects in detail.

Practical seismic assessment of unreinforced masonry historical buildings

  • Pardalopoulos, Stylianos I.;Pantazopoulou, Stavroula J.;Ignatakis, Christos E.
    • Earthquakes and Structures
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    • 제11권2호
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    • pp.195-215
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    • 2016
  • Rehabilitation of historical unreinforced masonry (URM) buildings is a priority in many parts of the world, since those buildings are a living part of history and a testament of human achievement of the era of their construction. Many of these buildings are still operational; comprising brittle materials with no reinforcements, with spatially distributed mass and stiffness, they are not encompassed by current seismic assessment procedures that have been developed for other structural types. To facilitate the difficult task of selecting a proper rehabilitation strategy - often restricted by international treaties for non-invasiveness and reversibility of the intervention - and given the practical requirements for the buildings' intended reuse, this paper presents a practical procedure for assessment of seismic demands of URM buildings - mainly historical constructions that lack a well-defined diaphragm action. A key ingredient of the method is approximation of the spatial shape of lateral translation, ${\Phi}$, that the building assumes when subjected to a uniform field of lateral acceleration. Using ${\Phi}$ as a 3-D shape function, the dynamic response of the system is evaluated, using the concepts of SDOF approximation of continuous systems. This enables determination of the envelope of the developed deformations and the tendency for deformation and damage localization throughout the examined building for a given design earthquake scenario. Deformation demands are specified in terms of relative drift ratios referring to the in-plane and the out-of-plane seismic response of the building's structural elements. Drift ratio demands are compared with drift capacities associated with predefined performance limits. The accuracy of the introduced procedure is evaluated through (a) comparison of the response profiles with those obtained from detailed time-history dynamic analysis using a suite of ten strong ground motion records, five of which with near-field characteristics, and (b) evaluation of the performance assessment results with observations reported in reconnaissance reports of the field performance of two neoclassical torsionally-sensitive historical buildings, located in Thessaloniki, Greece, which survived a major earthquake in the past.

Seismic deformation demands on rectangular structural walls in frame-wall systems

  • Kazaz, Ilker
    • Earthquakes and Structures
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    • 제10권2호
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    • pp.329-350
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    • 2016
  • A parametric study was conducted to investigate the seismic deformation demands in terms of drift ratio, plastic base rotation and compression strain on rectangular wall members in frame-wall systems. The wall index defined as ratio of total wall area to the floor plan area was kept as variable in frame-wall models and its relation with the seismic demand at the base of the wall was investigated. The wall indexes of analyzed models are in the range of 0.2-2%. 4, 8 and 12-story frame-wall models were created. The seismic behavior of frame-wall models were calculated using nonlinear time-history analysis and design spectrum matched ground motion set. Analyses results revealed that the increased wall index led to significant reduction in the top and inter-story displacement demands especially for 4-story models. The calculated average inter-story drift decreased from 1.5% to 0.5% for 4-story models. The average drift ratio in 8- and 12-story models has changed from approximately 1.5% to 0.75%. As the wall index increases, the dispersion in the calculated drifts due to ground motion variability decreased considerably. This is mainly due to increase in the lateral stiffness of models that leads their fundamental period of vibration to fall into zone of the response spectra that has smaller dispersion for scaled ground motion data set. When walls were assessed according to plastic rotation limits defined in ASCE/SEI 41, it was seen that the walls in frame-wall systems with low wall index in the range of 0.2-0.6% could seldom survive the design earthquake without major damage. Concrete compressive strains calculated in all frame-wall structures were much higher than the limit allowed for design, ${\varepsilon}_c$=0.0035, so confinement is required at the boundaries. For rectangular walls above the wall index value of 1.0% nearly all walls assure at least life safety (LS) performance criteria. It is proposed that in the design of dual systems where frames and walls are connected by link and transverse beams, the minimum value of wall index should be greater than 0.6%, in order to prevent excessive damage to wall members.

Seismic performance and damage evaluation of concrete-encased CFST composite columns subjected to different loading systems

  • Xiaojun Ke;Haibin Wei;Linjie Yang;Jin An
    • Steel and Composite Structures
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    • 제47권1호
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    • pp.121-134
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    • 2023
  • This paper tested 11 concrete-encased concrete-filled steel tube (CFST) composite columns and one reinforced concrete column under combined axial compression and lateral loads. The primary parameters, including the loading system, axial compression ratio, volume stirrup ratio, diameter-to-thickness ratio of the steel tube, and stirrup form, were varied. The influence of the parameters on the failure mode, strength, ductility, energy dissipation, strength degradation, and damage evolution of the composite columns were revealed. Moreover, a two-parameter nonlinear seismic damage model for composite columns was established, which can reflect the degree and development process of the seismic damage. In addition, the relationships among the inter-story drift ratio, damage index and seismic performance level of composite columns were established to provide a theoretical basis for seismic performance design and damage assessments.

형상비 4.0인 비내진 철근콘크리트 기둥의 파괴거동 (Failure Behavior of Non-seismic RC Column with aspect ratio of 4.0)

  • 고성현
    • 한국구조물진단유지관리공학회 논문집
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    • 제24권6호
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    • pp.59-66
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    • 2020
  • 축소모형 팔각형 기둥 실험체 2개를 제작하여 일정한 축력 하에서 반복 횡하중을 가력하는 실험을 수행하였다. 실험체는 중실단면과 중공단면이고 모든 실험체의 횡방향 나선철근 체적비는 0.00206의 값을 갖는다. 실험체들은 휨-전단 파괴거동을 보였다. 본 논문에서는 실험결과에 따른 파괴거동과 내진성능을 분석하였다. 실험결과, 중공 실험체는 초기강성, 초기 균열양상, 에너지 소산능력 등의 구조성능이 중실 실험체와 유사한 거동을 보였으나, 중공 실험체의 경우에는 3% 변위비 이후에 횡력, 극한변위, 에너지소산능력이 현저하게 감소되었다.

철근콘크리트 원형 교각의 전단성능에 대한 횡방향철근의 영향 (Effect of Transverse Steel on Shear Performance for RC Bridge Columns)

  • 고성현
    • 한국지진공학회논문집
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    • 제25권5호
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    • pp.191-199
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    • 2021
  • In seismic design, hollow section concrete columns offer advantages by reducing the weight and seismic mass compared to concrete section RC bridge columns. However, the flexure-shear behavior and spirals strain of hollow section concrete columns are not well-understood. Octagonal RC bridge columns of a small-scale model were tested under cyclic lateral load with constant axial load. The volumetric ratio of the transverse spiral hoop of all specimens is 0.00206. The test results showed that the structural performance of the hollow specimen, such as the initial crack pattern, initial stiffness, and diagonal crack pattern, was comparable to that of the solid specimen. However, the lateral strength and ultimate displacement of the hollow specimen noticeably decreased after the drift ratio of 3%. The columns showed flexure-shear failure at the final stage. Analytical and experimental investigations are presented in this study to understand a correlation confinement steel ratio with neutral axis and a correlation between the strain of spirals and the shear resistance capacity of steel in hollow and solid section concrete columns. Furthermore, shear strength components (Vc, V, Vp) and concrete stress were investigated.