• 제목/요약/키워드: response site

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2-매개변수 지반분류 방법 및 지반 증폭계수의 검증 (I) - 국외 내진설계기준 및 부지응답특성과의 비교 (Verification of 2-Parameters Site Classification System and Site Coefficients (I) - Comparisons with Well-known Seismic Code and Site Response Characteristics)

  • 이세현;선창국;하정곤;김동수
    • 한국지반공학회논문집
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    • 제28권3호
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    • pp.25-34
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    • 2012
  • 최근 제안된 2-매개변수 지반분류 방법 및 지반 증폭계수가 국내 지반조건 및 지반증폭특성에 적합함을 검증하기 위하여 내진설계기준연구II, Eurocode-8, 현재 개정중인 미국 동부지역 NYC DOT 내진설계기준과 비교를 수행하였다. 유사한 조건의 지반 조건에 대하여 각 기준의 설계응답스펙트럼을 비교한 결과, 2-매개변수 지반분류, Eurocode-8, NYC DOT 내진설계기준은 일반적인 국내 지반특성인 단주기 영역의 증폭을 크게 고려하고 있는 반면, 내진설계기준 연구II는 장주기 영역의 증폭을 크게 평하는 것으로 나타났다. 추가적으로 경주시 $10km{\times}10km$ 지역내 50개 부지에 대한 지반응답해석 결과를 확보하고, 이를 내진설계기준연구II 및 2-매개변수 지반분류 방법에서 제안하는 지반 증폭계수와 2차원 공간적인 비교를 수행하였다. 단주기 및 장주기 증폭계수 모두에 대하여 내진설계기준연구II가 2-매개변수 지반분류 방법에 비하여 부지응답해석 결과와의 오차값이 월등히 큰 것으로 평가되어, 2-매개변수 지반분류 방법에서 제안하는 지반 증폭계수의 타당성을 확인하였다.

부지효과를 고려한 2차원 평면상의 지진응답해석 (Seismic Response Analysis Considering the Site Effect in Two Dimensional Cases)

  • 김민규;임윤묵;김문겸
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 2001년도 추계 학술발표회 논문집 Proceedings of EESK Conference-Fall 2001
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    • pp.83-90
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    • 2001
  • The site effects of local geological conditions on seismic ground motion are performed using 2D numerical method. For the analysis, a numerical method far ground response analysis using FE-BE coupling method is developed. The total system is divided into two parts so called far field and near field. The far field is modeled by boundary element formulation using the multi-layered dynamic fundamental solution that satisfied radiational condition of wave. And this is coupled with near field modeled by finite elements. In order to verify the seismic response analysis, the results are compared with those of commercial code. As a result, it is shown that the developed method can be an efficient numerical method to solve the seismic response analysis of the site effect in 2D problem.

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국내 확률론적 지진계수 생성 (Development of Probabilistic Seismic Coefficients of Korea)

  • 곽동엽;정창균;박두희;이홍성
    • 한국지반공학회논문집
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    • 제25권10호
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    • pp.87-97
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    • 2009
  • 지진계수는 지진재해도 함께 지표면에서의 설계응답스펙트럼을 생성하는데 사용된다. 지진계수는 일반적으로 결정론적인 방법으로 도출되는 반면 지진재해도는 확률론적으로 계산되어 이들은 혼용될 수 없으나, 국내외 내진설계기준에서는 이들을 명확한 근거없이 혼용하고 있다. 이와 같은 근본적인 문제점을 해결하기 위해서 본 연구에서는 기존의 지진재해분석과 암반노두에서는 동일한 결과를 재현하되 지반응답해석 기능을 추가하여 토층에서의 부지증폭현상을 고려한 확률론적인 지진계수를 도출할 수 있는 신(新) 지진재해분석 기법을 적용하였다. 신(新) 지진재해분석 기법의 또다른 장점은 지반의 불확실성과 임의성을 합리적으로 고려할 수 있다는 점이다. 본 연구에서 계산된 확률론적 지진계수는 내진설계기준(II)과 국내에서 제안된 지진계수 세트들과 비교하여 차이점을 분석하였다. 비교 결과, 내진설계기준(II)과는 현격한 차이가 있는 반면, 또다른 지진계수와는 일부 지반분류에서만 차이가 나는 것으로 나타났다.

Viaduct seismic response under spatial variable ground motion considering site conditions

  • Derbal, Rachid;Benmansour, Nassima;Djafour, Mustapha;Matallah, Mohammed;Ivorra, Salvador
    • Earthquakes and Structures
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    • 제17권6호
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    • pp.557-566
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    • 2019
  • The evaluation of the seismic hazard for a given site is to estimate the seismic ground motion at the surface. This is the result of the combination of the action of the seismic source, which generates seismic waves, the propagation of these waves between the source and the site, and site local conditions. The aim of this work is to evaluate the sensitivity of dynamic response of extended structures to spatial variable ground motions (SVGM). All factors of spatial variability of ground motion are considered, especially local site effect. In this paper, a method is presented to simulate spatially varying earthquake ground motions. The scheme for generating spatially varying ground motions is established for spatial locations on the ground surface with varying site conditions. In this proposed method, two steps are necessary. Firstly, the base rock motions are assumed to have the same intensity and are modelled with a filtered Tajimi-Kanai power spectral density function. An empirical coherency loss model is used to define spatial variable seismic ground motions at the base rock. In the second step, power spectral density function of ground motion on surface is derived by considering site amplification effect based on the one dimensional seismic wave propagation theory. Several dynamics analysis of a curved viaduct to various cases of spatially varying seismic ground motions are performed. For comparison, responses to uniform ground motion, to spatial ground motions without considering local site effect, to spatial ground motions with considering coherency loss, phase delay and local site effects are also calculated. The results showed that the generated seismic signals are strongly conditioned by the local site effect. In the same sense, the dynamic response of the viaduct is very sensitive of the variation of local geological conditions of the site. The effect of neglecting local site effect in dynamic analysis gives rise to a significant underestimation of the seismic demand of the structure.

Effects of the earth fissure on the seismic response characteristics of a nearby metro station

  • Jiang Chang;Yahong Deng;Huandong Mu
    • Earthquakes and Structures
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    • 제24권1호
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    • pp.53-64
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    • 2023
  • Earth fissures with several kilometers will inevitably approach or cross the metro line, significantly threatening the safety of the underground structure in the earth fissure site. However, the influence of the earth fissure site's amplification effect on the metro station's dynamic response is still unclear. A representative earth fissure in Xi'an was taken as an example to establish a numerical model of a metro station in the earth fissure site. The dynamic response characteristics of the metro stations at different distances from the earth fissure under various seismic waves were calculated. The results show that the existence of the earth fissure significantly amplifies the dynamic response of the nearby underground structures. The responses of the axial force, shear force, bending moment, normal stress, horizontal displacement, inter-story drift, and relative slip of the metro station were all amplified within a specific influence range. The amplification effect increases with the seismic wave intensity. The amplification effect caused by the earth fissure has relatively weak impacts on the axial shear, shear force, bending movement, normal stress, and horizontal movement; slightly larger impacts on the inter-story drift and acceleration; and a significant impact on the relative slip. The influence ranges of the axial force and normal stress are approximately 20 m. The influence ranges of the acceleration and inter-story drift can reach 30 m. Therefore, the seismic fortification level of the underground structure in the earth fissure site needs to be improved.

Seismic performance of the immersed tunnel under offshore and onshore ground motions

  • Bowei Wang;Guquan Song;Rui Zhang;Baokui Chen
    • Earthquakes and Structures
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    • 제27권1호
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    • pp.41-55
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    • 2024
  • There are obvious differences between the characteristics of offshore ground motion and onshore ground motion in current studies, and factors such as water layer and site conditions have great influence on the characteristics of offshore ground motion. In addition, unlike seismic response analysis of offshore superstructures such as sea-crossing bridges, tunnels are affected by offshore soil constraints, so it is necessary to consider the dynamic interaction between structure and offshore soil layer. Therefore, a seismic response analysis model considering the seawater, soil layer and tunnel structure coupling is established. Firstly, the measured offshore and different soil layers onshore ground records are input respectively, and the difference of seismic response under different types of ground motions is analyzed. Then, the models of different site conditions were input into the measured onshore bedrock strong ground motion records to study the influence of seawater layer and silt soft soil layer on the seabed and tunnel structure. The results show that the overall seismic response between the seabed and the tunnel structure is more significant when the offshore ground motion is input. The seawater layer can suppression the vertical seismic response of seabed and tunnel structure, while the slit soft soil layer can amplify the horizontal seismic response. The results will help to promote seismic wave selection of marine structures and provide reference for improving the accuracy of seismic design of immersed tunnels.

구조물-지반 상호작용 영향을 고려한 새로운 지반계수 평가방법에 대한 제안 (Proposed New Evaluation Method of the Site Coefficients Considering the Effects of the Structure-Soil Interaction)

  • 김용석
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 2006년도 학술발표회 논문집
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    • pp.327-336
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    • 2006
  • Site coefficients in IBC and KBC codes have some limits to predict the rational seismic responses of a structure, because they consider only the effect of the soil amplification without the effects of the structure-soil interaction. In this study, upper and lower limits of site coefficients are estimated through the pseudo 3-D elastic seismic response analyses of structures built on linear or nonlinear soil layers considering the structure-soil interaction effects. Soil characteristics of site classes of A, B, and C were assumed to be linear, and those of site classes of D and E were done to be nonlinear and the Ramberg-Osgood model was used to evaluate shear modulus and damping ratio of a soil layer depending on the shear wave velocity of a soil layer. Seismic analyses were performed with 12 weak or moderate earthquake records, scaled the peak acceleration to 0.1g or 0.2g and deconvoluted as earthquake records at the bedrock 30m beneath the outcrop. With the study results of the elastic seismic response analyses of structures, new standard response spectrum and upper and lower limits of the site coefficients of Fa and Fv at the short period range and the period of 1 second are suggested Including the structure-soil interaction effects.

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수도(水稻) 적정시비량(適正施肥量) 결정(決定)에 대한 대체모형(代替模型) (An Alternative Model for Determining the Optimal Fertilizer Level)

  • 장석환
    • 한국토양비료학회지
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    • 제13권1호
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    • pp.21-32
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    • 1980
  • Linear models, with and without site variables, have been investigated in order to develop an alternative methodology for determining optimal fertilizer levels. The resultant models are : (1) Model I is an ordinary quadratic response function formed by combining the simple response function estimated at each site in block diagonal form, and has parameters [${\gamma}^{(1)}_{m{\ell}}$], for m=1, 2, ${\cdots}$, n sites and degrees of polynomial, ${\ell}$=0, 1, 2. (2) Mode II is a multiple regression model with a set of site variables (including an intercept) repeated for each fertilizer level and the linear and quadratic terms of the fertilizer variables arranged in block diagonal form as in Model I. The parameters are equal to [${\beta}_h\;{\gamma}^{(2)}_{m{\ell}}$] for h=0, 1, 2, ${\cdots}$, k site variable, m=1, 2, ${\cdots}$ and ${\ell}$=1, 2. (3) Model III is a classical response surface model, I. e., a common quadratic polynomial model for the fertilizer variables augmented with site variables and interactions between site variables and the linear fertilizer terms. The parameters are equal to [${\beta}_h\;{\gamma}_{\ell}\;{\theta}_h$], for h=0, 1, ${\cdots}$, k, ${\ell}$=1, 2, and h'=1, 2, ${\cdots}$, k. (4) Model IV has the same basic structure as Mode I, but estimation procedure involves two stages. In stage 1, yields for each fertilizer level are regressed on the site variables and the resulting predicted yields for each site are then regressed on the fertilizer variables in stage 2. Each model has been evaluated under the assumption that Model III is the postulated true response function. Under this assumption, Models I, II and IV give biased estimators of the linear fertilizer response parameter which depend on the interaction between site variables and applied fertilizer variables. When the interaction is significant, Model III is the most efficient for calculation of optimal fertilizer level. It has been found that Model IV is always more efficient than Models I and II, with efficiency depending on the magnitude of ${\lambda}m$, the mth diagonal element of X (X' X)' X' where X is the site variable matrix. When the site variable by linear fertilizer interaction parameters are zero or when the estimated interactions are not important, it is demonstrated that Model IV can be a reasonable alternative model for calculation of optimal fertilizer level. The efficiencies of the models are compared us ing data from 256 fertilizer trials on rice conducted in Korea. Although Model III is usually preferred, the empirical results from the data analysis support the feasibility of using Model IV in practice when the estimated interaction term between measured soil organic matter and applied nitrogen is not important.

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GIS 기반 경기도 광역영역의 부지지진응답 특성 및 연계 지진 취약지역 분석 (Regional Assessment of Seismic Site Effects and Induced Vulnerable Area in Gyeonggi-do, South Korea, Using GIS)

  • 김한샘;선창국;조형익;남지현
    • 한국지반공학회논문집
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    • 제34권5호
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    • pp.19-35
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    • 2018
  • 최근 경주지진과 포항지진과 같이 중규모 이상 지진이 빈번이 발생함에 따라 피해기능성이 커질 수 있는 중서부 도시 지역들에 대한 종합적 지진재해 대책 수립의 필수기본 정보인 지역적 부지고유 지진응답 공간정보 예측의 필요성이 증대되고 있다. 특히 경기도 지역을 대상으로 정량적 부지고유 지반응답 특성 파악의 필요성이 증대됨에 따라 대상 확장영역 내 전략적 지반조사 자료의 확보 및 연계적 부지특성 파악 연구가 다각도로 진행되고 있다. 이에 본 연구에서는 경기도 지진취약지역 도출 및 부지고유 지진응답특성 분석을 위한 위사결정 프레임웍을 제시하였다. 시추조사 자료 및 수치표고모델 등의 지표피복 자료를 수집함으로써 지반지진공학적 연계활용을 위한 GIS 플랫폼 기반의 Geo-Data를 구축하였다. 지구통계학적 공간보간 기법의 최적화 설계를 통해 지층분포 특성 및 연계 취약도 성분 도출을 위한 지반 공간그리드를 구축하였으며, 이를 통해 지진지반응답 매개변수의 공간구역화를 수행하였다. 이에 따라 경기도 지역의 정량적 부지효과를 고려한 경기도 맞춤형 지진방재대책 수립을 위한 기저 정보로서 활용하였다.

An analytical model for displacement response spectrum considering the soil-resonance effect

  • Zhang, Haizhong;Zhao, Yan-Gang
    • Earthquakes and Structures
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    • 제22권4호
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    • pp.373-386
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    • 2022
  • The development of performance-based design methodologies requires a reasonable definition of a displacement-response spectrum. Although ground motions are known to be significantly affected by the resonant-like amplification behavior caused by multiple wave reflections within the surface soil, such a soil-resonance effect is seldom explicitly considered in current-displacement spectral models. In this study, an analytical approach is developed for the construction of displacement-response spectra by considering the soil-resonance effect. For this purpose, a simple and rational equation is proposed for the response spectral ratio at the site fundamental period (SRTg) to represent the soil-resonance effect based on wave multiple reflection theory. In addition, a bilinear model is adopted to construct the soil displacement-response spectra. The proposed model is verified by comparing its results with those obtained from actual observations and SHAKE analyses. The results show that the proposed model can lead to very good estimations of SRTg for harmonic incident seismic waves and lead to reasonable estimations of SRTg and soil displacement-response spectra for earthquakes with a relatively large magnitude, which are generally considered for seismic design, particularly in high-seismicity regions.