• 제목/요약/키워드: shaking test

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1/5 축소 비연성 3층 철근콘크리트 골조의 진동대 실험 (Shaking Table Tests of A 1/5-Scale 3-Story Nonductile Reinforced Concrete Frame)

  • 이한선;우성우;허윤섭;고동우;강귀용;김상대;정하선;송진규
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1997년도 가을 학술발표회 논문집
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    • pp.581-586
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    • 1997
  • The objective of this study is to investigate the behavior of a 1/5-scale 3-story nonductile reinforced concrete frame subjected to earthquake excitation. For this purpose, Taft N21E earthquake accelerogram was simulated by using 3m${\times}$5m shaking table. When the input acceleration is compared to that of output, it can be found that simulation of shaking table is excellent. From the results of test with Taft N21E earthquake accelerogram adjusted to peak ground acceleration(PGA) 0.06g and 0.12g(maximum acceleration in korea seismic code) the model responded in elastic behavior and it is found that the existing building in our country are safe against the levels of PGA 0.06g and 0.12g.

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스테핑 모터를 이용한 진동대의 설계 및 구현 (Design and Implementation of Shaking Table using Stepping Motor)

  • 정형일;최재훈;홍규장
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1997년도 하계학술대회 논문집 B
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    • pp.488-490
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    • 1997
  • This study is focused on the design and performance test of shaking table using stepping motor. Stepping motor can control the motion accurately with generated pulses and is applied to the shaking table. Earthquakes like El Centro and Taft are used as inputs to the shaking table. First, the number of pulses are calculated and sent to pulse generator. Then, the generator controls the table according to the pulse signs. It is shown that the measured signals from the table are in very good agreement with input signals of scale-downed earthquakes of El Centro and Taft. This table will be used for the experimental study of small-scaled building structures with tuned mass dampers under earthquakes.

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진동대시험을 이용한 DCM공법에 따른 방파제의 동적거동 분석 (Analysis on the Dynamic Behavior of Breakwater with the DCM Method Using the Shaking Table Test)

  • 김영준;박인준
    • 한국지반환경공학회 논문집
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    • 제23권5호
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    • pp.25-32
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    • 2022
  • 최근 우리나라에 리히터 규모 5.0 이상의 지진발생 2건과 규모가 낮은 지진발생이 많아짐에 따라 지진피해가 늘어나면서 내진설계에 대한 많은 연구와 관심이 높아지고 있으며, 그 중 최근 발생한 포항지진으로 인해 항만시설물에 대한 내진설계에도 관심이 높아졌다. 본 연구에서는 1g 진동대시험을 통하여 항만구조물 중 직립식, 경사식 방파제에 대한 지진 시 발생하는 동적거동에 대해서 실험 및 분석을 하였다. 이를 위해 사상법칙을 적용한 모델에 장주기(Hachinohe), 단주기(Ofunato), 인공지진파 총 세가지 지진파를 적용하고, 연약지반의 DCM 공법 보강 여부를 고려하여 실험하였다. 진동대시험결과를 기초로 지진 시 DCM 공법 보강 여부에 따라 직립식과 경사식 방파제의 동적거동에 대하여 가속도 및 수평·수직 변위를 분석하였다. 검토 결과 직립식 및 경사식 방파제 동적거동은 DCM 공법 보강을 한 경우에 지지력 및 강성이 높아짐에 따라 가속도의 증폭이 억제되는 경향을 나타내었다.

Model Updating of an Electric Cabinet using Shaking Table Test

  • Cui, Jintao;Cho, Sung-Gook;Kim, Doo-Kie;Koo, Ki-Young;Cho, Yang-Hee
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2008년도 춘계학술대회논문집
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    • pp.59-62
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    • 2008
  • This paper presents the procedure and the results of modal identification testing of a seismic monitoring system central processing unit cabinet for a nuclear power plant. This paper also provides a model updating for making effective analytical modeling of cabinet-type electrical equipment by comparing the test results with the analysis results. From the test results and their interpretation, modal properties (modal frequency, mode shape, and modal damping) of the specimen were satisfactorily identified. However, the analysis results may need to study further to find the effective and presentative model for the cabinet-type electrical equipment. This paper just presents the first stage of the research project "Development of dynamic behavior analysis technique of dynamic structure system" which is trying to build the lumped mass beam stick model even their results do not agree well with the test results.

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진동대 시험에 의한 편평한 암석 절리면의 동적 마찰거동 특성 (Dynamic Frictional Behavior of Saw-cut Rock Joints Through Shaking Table Test)

  • 박병기;전석원
    • 터널과지하공간
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    • 제16권1호
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    • pp.58-72
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    • 2006
  • 암반구조물의 규모가 점차 대형화됨에 따라 암반이 자유면에 노출되는 확률이 높아지고 있으며, 최근 들어 지진이나 발파, 고속철도의 운행에 의한 진동 등으로 야기되는 동적 하중의 발생빈도가 증가하는 추세이므로 동적 하중조건 하에서 암반 불연속면의 거동 특성 파악을 위한 연구의 필요성이 증대되고 있다. 본 연구에서는 자유면에 노출된 블록의 동적 거동을 모사할 수 있도록 경사면 진동대 시험장비를 제작하였고, 다양한 동적 하중 조건하에서 편평한 화강암 절리면의 마찰 거동 특성을 분석하였다. 경사시험을 통해서 구한 한계 경사각과 진동하중 하에서의 임계가속도로부터 역산한 정적 마찰각을 비교한 결과 동하중 하에서 정적마찰각이 $4.5\~8.2^{\circ}$ 정도 낮게 산정되는 경향을 보였다. 이론적인 암석 블록의 마찰 거동을 표현하는 블록 거동 프로그램을 작성하고, 진동하중에 의해 미끄러지는 암석 블록의 가속도 및 변위 계측결과를 개발된 프로그램에 의한 결과와 비교하여 암석 절리면의 동적 마찰각을 산정하였는데 동적 마찰각 역시 한계 경사각에 비해 $2.0\~7.5^{\circ}$ 정도 감소하는 결과를 얻었다. 동하중 하에서 측정된 정적 마찰각과 동적 마찰각은 가해진 가속도의 크기나 진폭 등의 하중 특성과 기하조건에 따라 달라지는 경향을 보였다. 개별요소 프로그램을 이용하여 진동대 시험을 모사하였는데, 계측결과 및 개발된 프로그램에 의한 결과와 비교적 잘 일치하였다. 진동대 시험에 의한 동적, 정적 마찰각은 직접전단시험에 의한 기본 마찰각보다 현저히 작게 산정되었다.

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.

Numerical studies on the effects of the lateral boundary on soil-structure interaction in homogeneous soil foundations

  • Li, Z.N.;Li, Q.S.;Lou, M.L.
    • Structural Engineering and Mechanics
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    • 제20권4호
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    • pp.421-434
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    • 2005
  • In this paper, the finite element method is applied to investigate the effect of the lateral boundary in homogenous soil on the seismic response of a superstructure. Some influencing factors are presented and discussed, and several parameters are identified to be important for conducting soil-structure interaction experiments on shaking tables. Numerical results show that the cross-section width L, thickness H, wave propagation velocity and lateral boundaries of soil layer have certain influences on the computational accuracy. The dimensionless parameter L/H is the most significant one among the influencing factors. In other words, a greater depth of soil layer near the foundation should be considered in shaking table tests as the thickness of the soil layer increases, which can be regarded as a linear relationship approximately. It is also found that the wave propagation velocity in soil layer affects the numerical accuracy and it is suggested to consider a greater depth of the soil layer as the wave propagation velocity increases. A numerical study on a soil-structure experimental model with a rubber ring surrounding the soil on a shaking table is also conducted. It is found the rubber ring has great effect on the soil-structure interaction experiments on shaking table. The experimental precision can be improved by reasonably choosing the elastic parameter and width of the rubber ring.

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.

Seismic Analysis on Recycled Aggregate Concrete Frame Considering Strain Rate Effect

  • Wang, Changqing;Xiao, Jianzhuang;Sun, Zhenping
    • International Journal of Concrete Structures and Materials
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    • 제10권3호
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    • pp.307-323
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    • 2016
  • The nonlinear behaviors of recycled aggregate concrete (RAC) frame structure are investigated by numerical simulation method with 3-D finite fiber elements. The dynamic characteristics and the seismic performance of the RAC frame structure are analyzed and validated with the shaking table test results. Specifically, the natural frequency and the typical responses (e.g., storey deformation, capacity curve, etc.) from Model 1 (exclusion of strain rate effect) and Model 2 (inclusion of strain rate effect) are analyzed and compared. It is revealed that Model 2 is more likely to provide a better match between the numerical simulation and the shaking table test as key attributes of seismic behaviors of the frame structure are captured by this model. For the purpose to examine how seismic behaviors of the RAC frame structure vary under different strain rates in a real seismic situation, a numerical simulation is performed by varying the strain rate. The storey displacement response and the base shear for the RAC frame structure under different strain rates are investigated and analyzed. It is implied that the structural behavior of the RAC frame structure is significantly influenced by the strain rate effect. On one hand, the storey displacements vary slightly in the trend of decreasing with the increasing strain rate. On the other hand, the base shear of the RAC frame structure under dynamic loading conditions increases with gradually increasing amplitude of the strain rate.

진동대실험을 통한 원추형 마찰진자베어링의 내진성능 평가 (Seismic Performance Evaluation of Cone-type Friction Pendulum Bearing System Using Shaking Table Test)

  • 전법규;장성진;김남식
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2011년도 춘계학술대회 논문집
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    • pp.389-394
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    • 2011
  • Existing FPS(Friction Pendulum System) is isolation system which is possible to isolate structures by pendulum characteristic from ground vibration. Structural natural frequency could be decided by designing the radius of curvature of FPS. Thus, response vibration could be reduced by changing natural frequency of structures from FPS. But effective periods of recorded seismic wave were various and estimation of earthquake characteristic could be difficult. If effective periods of seismic wave correspond to natural frequency of structures with FPS, resonance can be occurred. Therefore, CFPBS(Cone-type Friction Pendulum Bearing System) was developed for controlling the response acceleration and displacement by the slope of friction surfaces. Structural natural frequency with CFPBS can be changed according to position of ball on the friction surface which was designed cone-type. Therefore, Divergence of response could be controlled by CFPBS which had constantly changing natural frequency with low modal participation factor in wide-range. In this study, Seismic performance of CFPBS was evaluated by numerical analysis and shaking table test.

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