• 제목/요약/키워드: Ground motion duration

검색결과 54건 처리시간 0.021초

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.

지진시 비탈면의 영구변위 발생에 따른 응답특성 분석 (Analysis of Response Characteristics According to Permanent Displacement in Seismic Slope)

  • 안재광;박상기;김우석;손수원
    • 한국지반공학회논문집
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    • 제35권12호
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    • pp.135-145
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    • 2019
  • 비탈면 붕괴는 크게 내적요인과 외적요인으로 분류할 수 있다. 내적요인은 토층 깊이, 사면경사, 흙의 전단강도 등의 기존에 비탈면의 형성과 함께 내재 되어있는 공학적 요인이며, 외적요인은 지진과 같은 하중이다. 이때 최대가속도(PGA), 최대속도(PGV), Arias계수(I), 고유주기(Tp), 스펙트럼 가속도(SaT=1.0) 등은 지진의 외적요인으로 대변되는 값이다. 특히, 최대지반가속도(peak ground acceleration, PGA)는 지진의 지반 운동 크기를 정의하는 가장 대표적인 값이지만 동일한 최대 지반가속도 값을 가지는 진동이라도 지진의 지속시간에 따라 달라지는 사면에서의 변위를 충분히 고려하지 못하는 단점을 가지고 있다. 본 연구에서는 인공사면을 대상으로 2차원 평면변형률 조건의 수치해석을 수행하였으며, 다양한 지진 시나리오의 PGA를 0.2g로 스케일링하여 적용했을 때 비탈면에서 발생하는 응답특성을 분석하였다. 분석 결과, 비탈면의 상층부와 하층부의 응답은 활동면 발생 여부에 따라 차이를 보이며, 입력 지진파의 외적요인 보다는 소성변형을 유발시킨 진동 특성의 영향을 받는 것으로 나타났다.

발레 무용수의 Fouette en dehors동작 시 하지분절에 대한 생체역학적 분석 (A Biomechanical Analysis of Lower Extremity Segment dur ing the Fouette en dehors Performed by Ballet Dancers)

  • 이진;오정환
    • 한국운동역학회지
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    • 제22권1호
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    • pp.43-53
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    • 2012
  • The purpose of this study was to quantitatively examine the biomechanical variables of Fouette turns for expert and beginner ballet dancers and to determine the difference in the variables between the two groups. sixteen female ballet dancers participated in this study. They were divided into an expert group(age, $25.38{\pm}1.92$ years; height, $168.38{\pm}4.66$ cm; mass, $49.63{\pm}4.41$ kg) and a beginner group(age, $20.88{\pm}1.13$ years; height, $161.63{\pm}7.42$ cm; mass, $48.88{\pm}3.64$ kg) depending on their ballet experience. Descriptive data were expressed as mean ${\pm}$ standard deviation (SD) for all variables including the duration, displacement of the center of the body, velocity of the center of the body, angle of the body segments, angular velocity of the body segments, ground reaction force, lower extremity torque, muscle activity, body weight, age, and body mass. An independence t-test was conducted to determine how the following variables differed between the beginners and experts: duration, displacement of the center of the body, velocity of the center of the body, angle of the body segments, angular velocity of the body segments, ground reaction force, lower extremity torque, and muscle activity. All comparisons were made at the p<0.05 significance level. The results show that the experts scored high on the biomechanical variables, although all the variables were not significant. Significant differences were found in the angle of body segments, angular velocity of the body segments, lower extremity torque, and muscle activity(p<0.05). The findings of this study demonstrate that the experts have the required skill to make an improved Fouette turn. The findings may also help ballet dancers to learn and understand the Fouette turn.

다성분 복소 트레이스 분석법을 이용한 지진파 입자운동 연구 (Seismic Studies on Ground Motion using the Multicomponent Complex Trace Analysis Method)

  • 이소영;김기영;김한준
    • 지구물리
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    • 제3권1호
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    • pp.37-48
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    • 2000
  • 다성분 복소 트레이스 분석법을 이용하여 지진에 의한 지면운동을 밝히고자 컴퓨터 합성 탄성파 자료와 자연 지진 자료를 대상으로 파선방향의 입자운동을 분석하였다. 합성 탄성파 자료에 적용시킨 결과, 실체파 합성 부분에서는 도달시각, 지속시간, 접근각 등을 정확히 찾을 수 있으며, 레일리파도 쉽게 인지된다. 규모 7.3의 심발 지진 자료로부터 입자운동의 분극특성을 계산한 결과, 종파의 수직성분과 수평성분의 순간위상차, 순간역타원율, 접근각은 각각 약 ${\pm}180^{\circ},\;0{\sim}0.25,\;-30^{\circ}{\sim}-45^{\circ}$의 값을 가지며, 이러한 분극특성으로부터 진원시간함수는 $6{\sim}7\;s$ 정도 지속되는 것으로 분석된다. 횡파의 경우는 순간위상차가 일정하지 않으며, $0{\sim}0.3$의 순간역타원율과 거의 수직의 접근각을 나타낸다. 횡파 도달 직전에 기록된 비교적 저주파의 신호는 분극특성으로부터 횡파와는 구별되는 종파의 일종으로 해석된다. 종파와 횡파의 도달시각을 이용하여 구한 속도와 파선변수는 각각 8.633 km/s, 4.762 km/s와 0.074 s/km, 0.197 s/km이며 동포와송비는 0.281로 계산된다.

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수정된 등가선형해석기법의 정확성 평가 (Evaluation of Accuracy of Modified Equivalent Linear Method)

  • 정창균;곽동엽;박두희;김광균
    • 한국지반환경공학회 논문집
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    • 제11권6호
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    • pp.5-20
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    • 2010
  • 1차원 등가선형 지반응답해석은 지반에 의한 지진동의 증폭현상을 모사하는데 널리 사용되고 있다. 등가선형해석은 적은 수의 입력변수를 필요로하므로 사용하기 편리하며 해석 소요시간이 짧다는 장점을 가지고 있는 반면, 시간에 따라서 변화하는 지반의 비선형 거동을 모사할 수 없으며 일정한 전단탄성계수와 감쇠비를 해석 내내 적용하는 선형해석이라는 단점을 가지고 있다. 이와 같은 등가선형해석의 단점을 보완하기 위하여 진동 주파수와 변형률과의 관계를 모사하는 다양한 형태의 수정된 등가선형해석기법들이 개발되었다. 수정된 기법들은 전단변형률 푸리에 스펙트럼을 사용한다는 점에서는 동일하지만, 이로부터 변형률의 주파수 의존도를 정의하는 과정에서는 차이를 보이고 있다. 본 연구에서는 두 가지 수정된 등가선형해석기법들의 정확성을 평가하기 위하여 국내에서 조사된 두 개의 토층에서 일련의 비선형, 등가선형, 수정된 등가선형 지반응답해석을 수행하였다. 해석 결과, 수정된 등가선형해석기법들은 고주파수 요소를 과대 예측할 수 있으며, 특히 고주파수 요소가 풍부한 인공지진파를 입력 지진파로 사용하였을 경우 비현실적인 응답이 계산될 수 있는 것으로 나타났다.

Rocking response of unanchored rectangular rigid bodies to simulated earthquakes

  • Aydin, Kamil
    • Structural Engineering and Mechanics
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    • 제18권3호
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    • pp.343-362
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    • 2004
  • Rocking response of rigid bodies with rectangular footprint, freely standing on horizontal rigid plane is studied analytically. Bodies are subjected to simulated single component of horizontal earthquakes. The effect of baseline correction, applied to simulated excitations, on the rocking response is first examined. The sensitiveness of rocking motion to the details of earthquakes and geometric properties of rigid bodies is investigated. Due to the demonstrated sensitivity of rocking response to these factors, prediction of rocking stability must be made in the framework of probability theory. Therefore, using a large number of simulated earthquakes, the effects of duration and shape of intensity function of simulated earthquakes on overturning probability of rigid bodies are studied. In the case when a rigid body is placed on any floor of a building, the corresponding probability is compared to that of a body placed on the ground. For this purpose, several shear frames are employed. Finally, the viability of the energy balance equation, which was introduced by Housner in 1963 and widely used by nuclear power industry to estimate the rocking stability of bodies, is evaluated. It is found that the equation is robust. Examples are also given to show how this equation can be used.

Localized evaluation of actuator tracking for real-time hybrid simulation using frequency-domain indices

  • Xu, Weijie;Guo, Tong;Chen, Cheng
    • Structural Engineering and Mechanics
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    • 제62권5호
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    • pp.631-642
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    • 2017
  • Accurate actuator tracking plays an important role in real-time hybrid simulation (RTHS) to ensure accurate and reliable experimental results. Frequency-domain evaluation index (FEI) interprets actuator tracking into amplitude and phase errors thus providing a promising tool for quantitative assessment of real-time hybrid simulation results. Previous applications of FEI successfully evaluated actuator tracking over the entire duration of the tests. In this study, FEI with moving window technique is explored to provide post-experiment localized actuator tracking assessment. Both moving window with and without overlap are investigated through computational simulations. The challenge is discussed for Fourier Transform to satisfy both time domain and frequency resolution for selected length of moving window. The required data window length for accuracy is shown to depend on the natural frequency and structural nonlinearity as well as the ground motion input for both moving windows with and without overlap. Moving window without overlap shows better computational efficiency and has potential for future online evaluation. Moving window with overlap however requires much more computational efforts and is more suitable for post-experiment evaluation. Existing RTHS data from Network Earthquake Engineering Simulation (NEES) is utilized to further demonstrate the effectiveness of the proposed approaches. It is demonstrated that with proper window size, FEI with moving window techniques enable accurate localized evaluation of actuator tracking for real-time hybrid simulation.

Numerical and random simulation procedure for preliminary local site characterization and site factor assessing

  • Beneldjouzi, Mohamed;Laouami, Nasser;Slimani, Abdennasser
    • Earthquakes and Structures
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    • 제13권1호
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    • pp.79-87
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    • 2017
  • Seismic analysis of local site conditions is fundamental for a reliable site seismic hazard assessment. It plays a major role in mitigation of seismic damage potential through the prediction of surface ground motion in terms of amplitude, frequency content and duration. Such analysis requires the determination of the transfer function, which is a simple tool for characterizing a soil profile by estimating its vibration frequencies and its amplification potential. In this study, numerical simulations are carried out and are then combined with a statistical study to allow the characterization of design sites classified by the Algerian Building Seismic Code (RPA99, ver 2003), by average transfer functions. The mean transfer functions are thereafter used to compute RPA99 average site factors. In this regard, coming up seismic fields are simulated based on Power Spectral Density Functions (PSDF) defined at the rock basement. Results are also used to compute average site factor where, actual and synthetic time histories are introduced. In absence of measurement data, it is found that the proposed approach can be used for a better soil characterization.

Effect of excitation intensity on slope stability assessed by a simplified approach

  • Korzec, Aleksandra;Jankowski, Robert
    • Earthquakes and Structures
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    • 제21권6호
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    • pp.601-612
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    • 2021
  • The paper concerns the selection of a design accelerograms used for the slope stability assessment under earthquake excitation. The aim is to experimentally verify the Arias Intensity as an indicator of the excitation threat to the slope stability. A simple dynamic system consisting of a rigid block on a rigid inclined plane subjected to horizontal excitation is adopted as a slope model. Strong ground motions recorded during earthquakes are reproduced on a shaking table. The permanent displacement of the block serves as a slope stability indicator. Original research stand allows us to analyse not only the relative displacement but also the acceleration time history of the block. The experiments demonstrate that the Arias Intensity of the accelerogram is a good indicator of excitation threat to the stability of the slope. The numerical analyses conducted using the experimentally verified extended Newmark's method indicate that both the Arias Intensity and the peak velocity of the excitation are good indicators of the impact of dynamic excitation on the dam's stability. The selection can be refined using complementary information, which is the dominant frequency and duration of the strong motion phase of the excitation, respectively.

Determination of critical excitation in seismic analysis of structures

  • Kamgar, Reza;Rahgozar, Reza
    • Earthquakes and Structures
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    • 제9권4호
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    • pp.875-891
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    • 2015
  • Earthquake can occur anywhere in the world and it is essential to design important members in special structures based on maximum possible forces that can be produced in them under severe earthquake. In addition, since the earthquake is an accidental phenomena and there are no similar earthquakes, therefore the possibility of strong earthquakes should be taken into account in earthquake-resistant design of important structures. Based on this viewpoint, finding the critical acceleration which maximizes internal forces is an essential factor in structural design. This paper proposes critical excitation method to compute the critical acceleration in design of important members in special structures. These critical accelerations are computed so that the columns' internal shear force at the base of the structure at each time step is maximized under constraints on ground motion. Among computed critical accelerations (of each time step), the one which produces maximum internal shear force is selected. A numerical example presents to show the efficiency of critical excitation method in determining the maximum internal shear force and base moment under variety of constraints. The results show that these method can be used to compute the resonant earthquake which have large enough effective duration of earthquake strong motion (between 12.86 sec to 13.38 sec) and produce the internal shear force and base moment for specific column greater than the same value for selected earthquakes in constructing the critical excitation (for different cases about 2.78 to 1.29 times the San Fernando earthquake). Therefore, a group of them can be utilized in developing the response spectrum for design of special structures.