• 제목/요약/키워드: shaking table collapse test

검색결과 17건 처리시간 0.027초

Collapse Behavior of an 18-Story Steel Moment Frame during a Shaking Table Test

  • Suita, Keiichiro;Suzuki, Yoshitaka;Takahashi, Motomi
    • 국제초고층학회논문집
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    • 제4권3호
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    • pp.171-180
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    • 2015
  • A shaking table test was conducted at the E-Defense shaking table facility to investigate the damage and collapse behavior of a steel high-rise building under exceedingly large ground motions. The specimen is a one-third scale 18-story steel moment frame designed and constructed according to design specifications and practices used in the 1980s and 1990s. The shaking table tests used a long-duration, long-period ground motion simulated for a sequential Tokai, Nankai, and Nankai earthquake scenario. The building specimen was subjected to a series of progressively increasing scaled motions until it completely collapsed. The damage to the steel frame began through the yielding of beams along lower stories and column bases of the first story. After several excitations by increasing scaled motions, cracks initiated at the welded moment connections and fractures in the beam flanges spread to the lower stories. As the shear strength of each story decreased, the drifts of lower stories increased and the frame finally collapsed and settled on the supporting frame. From the test, a typical progression of collapse for a tall steel moment frame was obtained, and the hysteretic behavior of steel structural members including deterioration due to local buckling and fracture were observed. The results provide important information for further understanding and an accurate numerical simulation of collapse behavior.

Experimental identification of the six DOF C.G.S., Algeria, shaking table system

  • Airouche, Abdelhalim;Bechtoula, Hakim;Aknouche, Hassan;Thoen, Bradford K.;Benouar, Djillali
    • Smart Structures and Systems
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    • 제13권1호
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    • pp.137-154
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    • 2014
  • Servohydraulic shaking tables are being increasingly used in the field of earthquake engineering. They play a critical role in the advancement of the research state and remain one of the valuable tools for seismic testing. Recently, the National Earthquake Engineering Research Center, CGS, has acquired a 6.1m x 6.1 m shaking table system which has a six degree-of-freedom testing capability. The maximum specimen mass that can be tested on the shaking table is 60 t. This facility is designed specially for testing a complete civil engineering structures, substructures and structural elements up to collapse or ultimate limit states. It can also be used for qualification testing of industrial equipments. The current paper presents the main findings of the experimental shake-down characterization testing of the CGS shaking table. The test program carried out in this study included random white noise and harmonic tests. These tests were performed along each of the six degrees of freedom, three translations and three rotations. This investigation provides fundamental parameters that are required and essential while elaborating a realistic model of the CGS shaking table. Also presented in this paper, is the numerical model of the shaking table that was established and validated.

Optimization of domes against instability

  • Ye, Jihong;Lu, Mingfei
    • Steel and Composite Structures
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    • 제28권4호
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    • pp.427-438
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    • 2018
  • Static stability is a decisive factor in the design of domes. Stability-related external factors, such as load and supports, are incorporated into structural vulnerability theory by the definition of a relative rate of joint well-formedness ($r_r$). Hence, the instability mechanism of domes can be revealed. To improve stability, an optimization model against instability, which takes the maximization of the lowest $r_r$ ($r_{r,min}$) as the objective and the discrete member sections as the variables, is established with constraints on the design requirements and steel consumption. Optimizations are performed on two real-life Kiewitt-6 model domes with a span of 23.4 m and rise of 11.7 m, which are initially constructed for shaking table collapse test. Well-formedness analyses and stability calculation (via arc-length method) of the models throughout the optimization history demonstrate that this proposed method can effectively enhance $r_{r,min}$ and optimize the static stability of shell-like structures. Additionally, seismic performance of the optimum models subjected to the same earthquake as in the shaking table test is checked. The supplemental simulations prove that the optimum models are superior to the original models under earthquake load as well.

진동대 실험을 통한 암반비탈면의 변위 거동 특성 (Displacements Behavior of Rock Slope by Shaking Table Test)

  • 윤원섭;강종철;박연준
    • 한국산업융합학회 논문집
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    • 제23권2_2호
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    • pp.245-254
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    • 2020
  • This study investigated the so far little-researched characteristics of the behaviors of rock slopes at the time of an earthquake. For the selection of the rock block, a proper model was formed by applying the similarity in consideration of the roughness and strength of the rock slope(10m) on the site, and shaking table tests were carried out according to seismic excitement acceleration, and seismic waves. In the case of the inclination angle of the joint plane of 20°, the long period wave at 0.3g or more at the time of the seismic excitement surpassed the length of 100mm, the permissible displacement (0.01H, H:slope height), which brought about the collapse of the rock; the short period wave surpassed the permissible displacement at 0.1g, which caused the collapse of the slope. The rock slope was close to a rigid block and a structure more vulnerable to the long period wave than to the short period wave. It collapsed in the short period wave even at the seismic amplitude smaller than the maximum design acceleration in Korea.

Effect of roof diaphragm on masonry structures under dynamic loading

  • Sathiparan, Navaratnarajah
    • Earthquakes and Structures
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    • 제10권2호
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    • pp.351-366
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    • 2016
  • The structural collapse of masonry structure under dynamic loading displays many possible failure mechanisms often related to interaction between structural components. Roof collapse is one of the major damage mechanisms observed in masonry structures during an earthquake. Better connection between the roof diaphragm and walls may be preventing roof collapse, but it can affect other failure mechanisms. In spite of this fact, less attention has been paid to the influence of the roof diaphragm effect on masonry structures and little research has been implemented in this field. In the present study, the roof diaphragm effect on the unreinforced masonry structure under dynamic loading has been experimentally investigated. Three one-quarter scale one-story adobe masonry house models with different roof conditions have been tested by subjecting them to sinusoid loading on a shaking table simulator. Phenomena such as failure pattern, dynamic performance of masonry structure were examined.

Seismic analysis of a masonry cross vault through shaking table tests: the case study of the Dey Mosque in Algiers

  • Rossi, Michela;Calderini, Chiara;Roselli, Ivan;Mongelli, Marialuisa;De Canio, Gerardo;Lagomarsino, Sergio
    • Earthquakes and Structures
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    • 제18권1호
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    • pp.57-72
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    • 2020
  • This paper presents the results of a monodirectional shaking table test on a full-scale unreinforced masonry cross vault characterized by asymmetric boundary conditions. The specimen represents a vault of the mosque of Dey in Algiers (Algeria), reproducing in detail the mechanical characteristics of masonry, and the constructive details including the presence of some peculiar wooden logs placed within the vault's abutments. The vault was tested with and without the presence of two steel bars which connect two opposite sides of the vault. The dynamic behaviour of both the vault's configurations were studied by using an incremental dynamic analysis up to the collapse of the vault without the steel bars. The use of an innovative high-resolution 3D optical system allowed measure displacement data of the cross vault during the shake table tests. The experimental results were analysed in terms of evolution of damage mechanisms, and in-plane and out-of-plane deformations. Moreover, the dynamic properties of the structure were investigated by means of an experimental modal analysis.

Experimental damage evaluation of prototype infill wall based on forced vibration test

  • Onat, Onur
    • Advances in concrete construction
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    • 제8권2호
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    • pp.77-90
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    • 2019
  • This paper aims to investigate vibration frequency decrease (vibration period elongation) of reinforced concrete (RC) structure with unreinforced infill wall and reinforced infill wall exposed to progressively increased artificial earthquake load on shaking table. For this purpose, two shaking table experiments were selected as a case study. Shaking table experiments were carried on 1:1 scaled prototype one bay one storey RC structure with infill walls. The purpose of this shaking table experiment sequence is to assess local behavior and progressive collapse mechanism. Frequency decrease and eigen-vector evolution are directly related to in-plane and out-of-plane bearing capacities of infill wall enclosure with reinforced concrete frame. Firstly, frequency decrease-damage relationship was evaluated on the base of experiment results. Then, frequency decrease and stiffness degradation were evaluated with applied Peak Ground Acceleration (PGA) by considering strength deterioration. Lastly, eigenvector evolution-local damage and eigenvector evolution-frequency decrease relationship was investigated. Five modes were considered while evaluating damage and frequency decrease of the tested specimens. The relationship between frequency decrease, stiffness degradation and damage level were presented while comparing with Unreinforced Brick Infill (URB) and Reinforced Infill wall with Bed Joint Reinforcement (BJR) on the base of natural vibration frequency.

국내 발생지진에 의한 물류창고 강재 적재설비의 내진성능 평가 (Seismic Performance of Steel Industrial Storage Racks Subjected to Korea Earthquakes)

  • 전종수;최형석;서영득;김충길;허광희
    • 한국지진공학회논문집
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    • 제22권3호
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    • pp.149-160
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    • 2018
  • This study experimentally and analytically examines the seismic vulnerability of steel rack storage frames subjected to Korea earthquakes (2016 Gyeongju earthquake and 2017 Pohang earthquake). To achieve this aim, this study selects a three-story, one-bay steel rack frame with a typical configuration of rack frame in Korea. Firstly, the local behavior for frame components is examined by performing monotonic and/or cyclic load tests and the global response and dynamic characteristics of the subject rack frame are investigated by conducting a shaking table test. The analytical model of the rack frame is then created based on the experimental results and is used to perform nonlinear time history analyses with recorded Korea earthquakes. The seismic demand of the rack frame is considerably affected by the spectral acceleration response, instead of peak ground accelerations (peak floor accelerations). Moreover, the collapse fragility curve of the rack frame is developed using incremental dynamic analyses for the Gyeongju and Pohang earthquakes. Fragility results indicate that the ground motion characteristics of these earthquakes do not significantly affect the frame vulnerability at the collapse state.

진동대실험을 사용한 비보강 및 ECC 자켓 보강 조적담장의 내진성능평가 (Seismic Performance Evaluation of Unreinforced and ECC-jacketed Masonry Fences using Shaking Table Test)

  • 이용훈;김진우;김재환;엄태성;이상현
    • 한국구조물진단유지관리공학회 논문집
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    • 제27권6호
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    • pp.182-192
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    • 2023
  • 본 연구에서는 동적 횡하중을 받는 조적 담장의 내진성능 향상을 위한 ECC(Engineered Cementitious Composite) 자켓의 효과를 실험적으로 검증하였다. 첫째로, 임팩트 해머 시험을 통해 비보강과 ECC로 보강된 조적 담장의 고유진동수와 모드 감쇠비, 변형 형상을 식별하여, 940mm의 비보강 조적담장과 970mm의 ECC 보강 담장이 각각 6.4, 35.3Hz의 고유진동수와 7.0, 5.3%의 감쇠비를 가지는 것을 확인하였다. 둘째로, 진동대를 사용하여 면외방향에 대한 지진파 실험을 수행하였고, El Centro(1940) 지진파를 25%부터 300%까지 스케일링하여 적용하였다. 비보강 조적담장의 경우, 50% 지진하중에서 벽돌과 줄눈 경계에 휨균열이 발생하였고, 다시 30%로 스케일링된 지반운동에서 면외방향으로 전도파괴되었다. 반면에 ECC로 보강된 조적담장은 300%의 지진하중에서도 균열이나 손상 없이 강건한 성능을 유지하였다. 마지막으로, 25~300%의 지반운동에 의한 비보강과 ECC 보강 조적담장의 밑면전단력과 설계기준에 따른 밑면전단력을 비교 및 평가하였다. 그 결과, 재현주기 1,000년의 지진에 대해 비보강 조적담장이 붕괴될 위험이 있는 데 반해, ECC 보강 담장은 4,800년 주기의 지진에도 안전한 것으로 추정되었다.

교량 상부구조물의 탄성받침 설치에 따른 충돌특성 분석 (Pounding Characteristics of a Bridge Superstructure on Rubber Bearings)

  • 최형석;김정우;공영이;정진환;김인태
    • 한국지진공학회논문집
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    • 제15권4호
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    • pp.13-21
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    • 2011
  • 지진하중으로 인해 교량상부구조 간에 발생하는 충돌은 교량상부구조의 낙교, 교각의 파괴와 같은 국부적인 손상뿐만 아니라 교량전체시스템의 붕괴를 유발할 수 있다. 이와 같은 충돌의 영향은 신축이음부의 재질, 형태 및 교대부의 여유간격과 관계가 있는 것으로 알려져 있다. 본 논문에서는 교량상부구조 간에 발생하는 충돌에 대한 특성을 분석하기 위해 충돌해석 이론 중 가장 널리 활용되고 있는 접합요소 접근법(Linear Spring Model, Kelvin-Voigt Model, Hertz Model)에 대해서 고찰 하고 이를 실험적으로 검증하기 위해 탄성받침이 설치된 교량상부구조를 모형화한 콘크리트 교량모델에 대한 진동대 실험을 실시하였다. 기존의 충돌모델을 적용한 이론 해는 실험결과와 잘 부합되지 못하였으며, 이에 본 논문에서는 충돌강성에 적절한 적용계수 �� 를 이용하여 충돌 후 거동을 잘 모사할 수 있는 충돌강성 수준을 산출하였다. 충돌발생시 적절한 강성 및 재료의 동적특성, 충돌면의 형상 등에 따라 발생하는 충돌력의 크기가 달라지므로 이에 대한 추가적인 연구가 필요한 것으로 판단된다.