• 제목/요약/키워드: peak ground displacement

검색결과 102건 처리시간 0.029초

확률론적 내진성능평가를 위한 PSC Box 거더교의 지진취약도 해석 (Seismic Fragility Analysis for Probabilistic Performance Evaluation of PSC Box Girder Bridges)

  • 송종걸;김학수;이태형
    • 대한토목학회논문집
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    • 제29권2A호
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    • pp.119-130
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    • 2009
  • 구조물의 지진취약도 곡선은 최대지반가속도, 가속도 스펙트럼($S_a$) 혹은 변위 스펙트럼($S_d$)등과 같은 지진의 크기를 나타내는 다양한 수준에 대하여 정해진 손상상태를 초과할 확률을 나타내는 것으로 구조물의 내진성능과 지진위험도를 평가하는데 아주 중요하다. 본 논문의 목적은 국내 교량의 대표적인 형식의 하나인 PSC BOX 거더교에 대한 지진취약도를 분석하는 것이다. 이를 위해 실제지진기록을 사용하여 국내 내진설계기준에 적합한 인공지진을 작성하여 예제교량에 대한 비탄성 시간이력해석을 수행하여 Shinozuka 등이 제안한 방법을 사용하여 지진취약도 곡선을 작성하였다. 최대지반가속도에 비해 구조물의 손상을 나타내기에는 $S_a$$S_d$가 보다 적절하므로 지진취약도 곡선을 $S_a$$S_d$ 단위로 전환하여 나타내었다. 비탄성 시간이력해석에 의해 평가된 최대지반가속도, $S_a$, $S_d$ 단위의 취약도 곡선을 HAZUS에서 사용하는 간편식을 이용한 지진취약도곡선과 비교하여 평가하였다.

반복 하중을 받는 비내진 저층 RC 구조물의 외부 기둥-보 접합부의 거동 (Behavior of Non-seismic Detailed Low-Rise R/C Exterior Beam-to-Column Joints Subjected to Cyclic Loading)

  • 서만식;장준호;김영문
    • 콘크리트학회지
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    • 제11권1호
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    • pp.109-118
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    • 1999
  • 국내에서는 1988년부터 내진 규준이 시행되었으며, 따라서 그 이전에 지어진 저층 철근콘크리트 건물들은 내진 규준이 적용되지 않고 단지 축하중만을 고려하여 설계되었다. 그러므로 약한 지진이 발생하여도 이러한 건물들은 심한 피해를 입을 수 있다. 본 논문에서는, 내진 규준이 시행되기 이전에 지어진 비내진 저층 철근콘크리트 모멘트 저항 골조의 지진 발생시 거동과 피해를 알아보기 위하여, 실제 존재하는 비내진 건물 중 3층 철근콘크리트 라멘조 공공청사 건물의 외부 적합부를 교차보가 있는 것과 없는 것의 2종류를 1/2의 실물크기로 제작하고, 횡방향 변위 제어로 반복하중을 가하여 실험을 수행하였다. 비내진 접합부의 가장 큰 특징은 적합부내의 횡보강근이 없다는 것이다. 실험을 통하여 균열의 형태, 강도${\cdot}$강성의 저하, 에너지 소산 그리고 기둥과 보 부재의 철근 미끄러짐을 조사하였다. 국내에서 규정하고 있는 최대지반가속도인 0.12g크기의 횡방향 하중을 가력하였을 경우에는 균열이 발생하지 않았으나, 횡방향 하중을 0.12g이상으로 증가할수록 교차보가 없는 외부접합부에서 전단균열이 발생하였다.

지지부재로 이형철근을 설치하는 띠형 강보강재의 인발성능 평가 (The Evaluation for Pullout Performance of Steel Strip Reinforcements with Deformed-Bars as Transverse Members)

  • 정성규;김주형;조삼덕;이광우
    • 한국지반신소재학회논문집
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    • 제12권4호
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    • pp.77-86
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    • 2013
  • 본 연구에서는 지지부재가 설치된 띠형 강보강재에 대한 실내인발시험을 수행하였다. 주문진 표준사를 사용하여 상대밀도 80%인 모형지반을 조성하였고, 지지부재의 개수를 0~2개로 구분하여 실내인발시험을 수행하였다. 상재압은 $50kN/m^2{\sim}200kN/m^2$까지 4단계로 구분하여 적용하였고, 1mm/min 속도로 강보강재를 인발하였다. 표면이 매끄러운 띠형 강보강재의 인발저항력은 보강재 표면과 지반 사이에서 마찰저항만 발현되기 때문에 인발 초기에 급격히 증가하다가 지속적으로 감소하는 경향을 나타낸다. 반면, 지지부재를 설치한 강보강재의 인발저항력은 마찰저항뿐만 아니라 수동저항도 함께 발현되므로 계속적으로 증가하는 것으로 나타났다. 보강재의 형태에 관계없이 최대인발저항은 상재압이 증가함에 따라 선형적으로 증가하는 것으로 나타났다. 지지부재를 1개 설치한 경우에 비해 지지부재를 2개 설치했을 때의 최대수동저항은 작게 나타났다. 이는 지지부재의 설치 간격 및 위치에 따라 지지부재에서 발현되는 수동저항의 크기가 다르기 때문에 나타나는 현상으로 판단되며, 지지부재 설치 위치 및 간격에 따른 추가 인발시험을 통해 확인할 필요가 있다.

Strain demand prediction method for buried X80 steel pipelines crossing oblique-reverse faults

  • Liu, Xiaoben;Zhang, Hong;Gu, Xiaoting;Chen, Yanfei;Xia, Mengying;Wu, Kai
    • Earthquakes and Structures
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    • 제12권3호
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    • pp.321-332
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    • 2017
  • The reverse fault is a dangerous geological hazard faced by buried steel pipelines. Permanent ground deformation along the fault trace will induce large compressive strain leading to buckling failure of the pipe. A hybrid pipe-shell element based numerical model programed by INP code supported by ABAQUS solver was proposed in this study to explore the strain performance of buried X80 steel pipeline under reverse fault displacement. Accuracy of the numerical model was validated by previous full scale experimental results. Based on this model, parametric analysis was conducted to study the effects of four main kinds of parameters, e.g., pipe parameters, fault parameters, load parameter and soil property parameters, on the strain demand. Based on 2340 peak strain results of various combinations of design parameters, a semi-empirical model for strain demand prediction of X80 pipeline at reverse fault crossings was proposed. In general, reverse faults encountered by pipelines are involved in 3D oblique reverse faults, which can be considered as a combination of reverse fault and strike-slip fault. So a compressive strain demand estimation procedure for X80 pipeline crossing oblique-reverse faults was proposed by combining the presented semi-empirical model and the previous one for compression strike-slip fault (Liu 2016). Accuracy and efficiency of this proposed method was validated by fifteen design cases faced by the Second West to East Gas pipeline. The proposed method can be directly applied to the strain based design of X80 steel pipeline crossing oblique-reverse faults, with much higher efficiency than common numerical models.

드롭랜딩 시 착지형태에 따른 충격흡수구간의 운동역학적 특성 (The Biomechanical Properties of the Shock Absorption Phase during Drop Landing According to Landing Types)

  • 박규태;유경석
    • 한국운동역학회지
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    • 제25권1호
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    • pp.29-37
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    • 2015
  • Objective : The purpose of this study was to investigate the biomechanical properties of shock absorption strategy and postural stability during the drop landing for each types. Methods : The motions were captured with Vicon Motion Capture System, with the fourteen infra-red cameras (100Hz) and synchronized with GRF(ground reaction force) data(1000Hz). Ten male soccer players performed a drop landing with single-leg and bi-legs on the 30cm height box. Dependent variables were the CoM trajectory and the Joint Moment. Statistical computations were performed using the paired t-test and ANOVA with Turkey HSD as post-hoc. Results : The dominant leg was confirmed to show a significant difference between the left leg and right leg as the inverted pendulum model during Drop Landing(Phase 1 & Phase 2). One-leg drop landing type had the higher CoM displacement, the peak of joint moment with the shock absorption than Bi-leg landing type. As a lower extremity joint kinetics analysis, the knee joint showed a function of shock absorption in the anterior-posterior, and the hip joint showed a function of the stability and shock absorption in the medial-lateral directions. Conclusion : These findings indicate that the instant equilibrium of posture balance(phase 1) was assessed by the passive phase as Class 1 leverage on the effect of the stability of shock absorption(phase 2) assessed by the active phase on the effect of Class 2 leverage. Application : This study shows that the cause of musculo-skeletal injuries estimated to be focused on the passive phase of landing and this findings could help the prevention of lower damage from loads involving landing related to the game of sports.

Development of fragility curves for RC bridges subjected to reverse and strike-slip seismic sources

  • Mosleh, Araliya;Razzaghi, Mehran S.;Jara, Jose;Varum, Humberto
    • Earthquakes and Structures
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    • 제11권3호
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    • pp.517-538
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    • 2016
  • This paper presents a probabilistic fragility analysis for two groups of bridges: simply supported and integral bridges. Comparisons are based on the seismic fragility of the bridges subjected to accelerograms of two seismic sources. Three-dimensional finite-element models of the bridges were created for each set of bridge samples, considering the nonlinear behaviour of critical bridge components. When the seismic hazard in the site is controlled by a few seismic sources, it is important to quantify separately the contribution of each fault to the structure vulnerability. In this study, seismic records come from earthquakes that originated in strike-slip and reverse faulting mechanisms. The influence of the earthquake mechanism on the seismic vulnerability of the bridges was analysed by considering the displacement ductility of the piers. An in-depth parametric study was conducted to evaluate the sensitivity of the bridges' seismic responses to variations of structural parameters. The analysis showed that uncertainties related to the presence of lap splices in columns and superstructure type in terms of integral or simply supported spans should be considered in the fragility analysis of the bridge system. Finally, the fragility curves determine the conditional probabilities that a specific structural demand will reach or exceed the structural capacity by considering peak ground acceleration (PGA) and acceleration spectrum intensity (ASI). The results also show that the simply supported bridges perform consistently better from a seismic perspective than integral bridges and focal mechanism of the earthquakes plays an important role in the seismic fragility analysis of highway bridges.

Earthquake Response of Mid-rise to High-rise Buildings with Friction Dampers

  • Kaur, Naveet;Matsagar, V.A.;Nagpal, A.K.
    • 국제초고층학회논문집
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    • 제1권4호
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    • pp.311-332
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    • 2012
  • Earthquake response of mid-rise to high-rise buildings provided with friction dampers is investigated. The steel buildings are modelled as shear-type structures and the investigation involved modelling of the structures of varying heights ranging from five storeys to twenty storeys, in steps of five storeys, subjected to real earthquake ground motions. Three basic types of structures considered in the study are: moment resisting frame (MRF), braced frame (BF), and friction damper frame (FDF). Mathematical modelling of the friction dampers involved simulation of the two distinct phases namely, the stick phase and the slip phase. Dynamic time history analyses are carried out to study the variation of the top floor acceleration, top floor displacement, storey shear, and base-shear. Further, energy plots are obtained to investigate the energy dissipation by the friction dampers. It is seen that substantial earthquake response reduction is achieved with the provision of the friction dampers in the mid-rise and high-rise buildings. The provision of the friction dampers always reduces the base-shear. It is also seen from the fast Fourier transform (FFT) of the top floor acceleration that there is substantial reduction in the peak response; however, the higher frequency content in the response has increased. For the structures considered, the top floor displacements are lesser in the FDF than in the MRF; however, the top floor displacements are marginally larger in the FDF than in the BF.

Passive control system for seismic protection of a multi-tower cable-stayed bridge

  • Geng, Fangfang;Ding, Youliang;Song, Jianyong;Li, Wanheng;Li, Aiqun
    • Earthquakes and Structures
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    • 제6권5호
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    • pp.495-514
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    • 2014
  • The performance of passive control system for the seismic protection of a multi-tower cable-stayed bridge with the application of partially longitudinal constraint system is investigated. The seismic responses of the Jiashao Bridge, a six-tower cable-stayed bridge using the partially longitudinal constraint system are studied under real earthquake ground motions. The effects of the passive control devices including the viscous fluid dampers and elastic cables on the seismic responses of the bridge are examined by taking different values of parameters of the devices. Further, the optimization design principle of passive control system using viscous fluid dampers is presented to determine the optimized parameters of the viscous fluid dampers. The results of the investigations show that the control objective of the multi-tower cable-stayed bridge with the partially longitudinal constraint system is to reduce the base shears and moments of bridge towers longitudinally restricted with the bridge deck. The viscous fluid dampers are found to be more effective than elastic cables in controlling the seismic responses. The optimized parameters for the viscous fluid dampers are determined following the principle that the peak displacement at the end of bridge deck reaches to the maximum value, which can yield maximum reductions in the base shears and moments of bridge towers longitudinally restricted with the bridge deck, with slight increases in the base shears and moments of bridge towers longitudinally unrestricted with the bridge deck.

Seismic analysis and performance for stone pagoda structure under Gyeongju earthquake in Korea

  • Kim, Ho-Soo;Kim, Dong-Kwan;Jeon, Geon-Woo
    • Earthquakes and Structures
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    • 제21권5호
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    • pp.531-549
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    • 2021
  • Analytical models were developed and seismic behaviors were analyzed for a three-story stone pagoda at the Cheollyongsa temple site, which was damaged by the Gyeongju earthquake of 2016. Both finite and discrete element modeling were used and the analysis results were compared to the actual earthquake damage. Vulnerable parts of stone pagoda structure were identified and their seismic behaviors via sliding, rocking, and risk analyses were verified. In finite and discrete element analyses, the 3F main body stone was displaced uniaxially by 60 and 80 mm, respectively, similar to the actual displacement of 90 mm resulting from the earthquake. Considering various input conditions such as uniaxial excitation and soil-structure interaction, as well as seismic components and the distance from the epicenter, both models yielded reasonable and applicable results. The Gyeongju earthquake exhibited extreme short-period characteristics; thus, short-period structures such as stone pagodas were seriously damaged. In addition, we found that sliding occurred in the upper parts because the vertical load was low, but rocking predominated in the lower parts because most structural members were slender. The third-floor main body and roof stones were particularly vulnerable because some damage occurred when the sliding and rocking limits were exceeded. Risk analysis revealed that the probability of collapse was minimal at 0.1 g, but exceeded 80% at above 0.3 g. The collapse risks at an earthquake peak ground acceleration of 0.154 g at the immediate occupancy, life safety, and collapse prevention levels were 90%, 52%, and 6% respectively. When the actual damage was compared with the risk analysis, the stone pagoda retained earthquake-resistant performance at the life safety level.

5개 중규모 지진의 속도 관측자료를 이용한 수평 응답스펙트럼 특성 분석 (Analysis of Characteristics of Horizontal Response Spectrum of Velocity Ground Motions from 5 Macro Earthquakes)

  • 김준경
    • 터널과지하공간
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    • 제21권6호
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    • pp.471-479
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    • 2011
  • 최근 한반도 및 주변해역에서 발생한 규모 4.8 이상의 5개 중규모 지진으로부터 관측된 속도 지반운동 파형을 이용하여 수평 응답스펙트럼을 분석하고 결과를 우선 가속도 지반운동을 이용하여 얻어진 수평 응답스펙트럼, 국내 원자력 관련 구조물의 내진설계 기준, 마지막으로 국내 일반 구조물 및 건축물 내진설계기준과 각각 비교하였다. 연구에 이용된 지반운동은 수평성분 102개(NS 및 EW 성분 포함)이며 고유진동수에 따른 응답을 구하고 각각의 최대 지반 속도 값을 이용하여 정규화 분석을 수행하였다. 첫째, 가속도 응답스펙트럼과 비교한 결과 속도 응답스펙트럼 값은 특히 중간주기에서 높은 응답을 보여 주었고 이에 비해 가속도 응답스펙트럼은 특히 단주기 즉 높은 고유진동수 영역에서 높은 응답을 보여 주었다. 둘째, 국내 원자력시설물의 내진기준으로 이용되고 있는 Reg. Guide 1.60과 비교한 결과 속도 응답스펙트럼 값은 약 6-7Hz를 시작점으로 보다 낮은 장주기 영역에서 기준값을 초과하는 현상을 보여 주었다. 셋째, 500년 재래주기에 해당하는 국내 일반 구조물 및 건축물 내진설계기준인 표준 설계응답스펙트럼을 SC, SD 및 SE지반 조건과 같은 3개 지반조건과 동시에 비교한 결과 차례로 약 1.5초, 2초 및 3초에서 시작하여 보다 장주기 영역에서 국내 일반 구조물 표준 설계 응답스펙트럼값을 초과하였다. 동일한 부지에서 일반적으로 가속도 응답스펙트럼은 단주기에서 가장 큰 값을 나타내며, 속도 응답 스펙트럼은 중간주기에서 가장 크며, 마지막으로 변위 응답스펙트럼은 장주기에서 가장 큰 값을 가진다는 국외 연구결과가 국내 지반운동을 이용한 결과에서 역시 적용가능하다는 점을 확인시켜 주었다. 최근 국내에서도 건축물의 초고층화 등으로 구조물의 디자인이 기존의 단주기에 비해 중간주기 및 장주기 영역이 상대적으로 강조되고 있어 이러한 중간주기영역에서 수평 응답스펙트럼의 정보는 향후 대단히 중요하다고 할 수 있다.