• 제목/요약/키워드: Effect of foundation stiffness

검색결과 116건 처리시간 0.027초

유체-구조물-지반 상호작용을 고려한 비결합 말뚝기초에 지지된 LNG 저장탱크의 수평지진입력에 대한 지진응답 매개변수해석 (A Parametric Study on the Seismic Response Analysis of LNG Storage Tank with Disconnected Pile Foundation Subjected to Horizontal Seismic Input Considering Fluid-Structure-Soil Interaction)

  • 손일민;김재민
    • 한국지진공학회논문집
    • /
    • 제28권1호
    • /
    • pp.21-32
    • /
    • 2024
  • This study performed the seismic response analysis of an LNG storage tank supported by a disconnected piled raft foundation (DPRF) with a load transfer platform (LTP). For this purpose, a precise analytical model with simultaneous consideration of Fluid-Structure Interaction (FSI) and Soil-Structure Interaction (SSI) was used. The effect of the LTP characteristics (thickness, stiffness) of the DPRF system on the seismic response of the superstructure (inner and outer tanks) and piles was analyzed. The analytical results were compared with the response of the piled raft foundation (PRF) system. The following conclusions can be drawn from the numerical results: (1) The DPRF system has a smaller bending moment and axial force at the head of the pile than the PRF system, even if the thickness and stiffness of the LTP change; (2) The DPRF system has a slight stiffness of the LTP and the superstructure member force can increase with increasing thickness. This is because as the stiffness of the LTP decreases and the thickness increases, the natural frequency of the LTP becomes closer to the natural frequency of the superstructure, which may affect the response of the superstructure. Therefore, when applying the DPRF system, it is recommended that the sensitivity analysis of the seismic response to the thickness and stiffness of the LTP must be performed.

세굴을 고려한 얕은 기초 교량의 동적거동 분석 및 지진 취약도 해석 (Dynamic Behavior and Seismic Fragility Analysis of Shallow Foundation Bridge Considering Scour)

  • 김나연;송종걸
    • 한국지진공학회논문집
    • /
    • 제20권2호
    • /
    • pp.79-89
    • /
    • 2016
  • If scour is occurred at shallow foundation of bridge, seismic performance of the bridge will be reduced. In order to evaluate accurate seismic response of bridge according to scour depths, modeling of foundation reflecting scour effect is important. In this study, taking into account the effect of the reduction in embedment depth of the shallow foundation by scouring, the soil around the foundation is modelled as an equivalent soil spring with various stiffness. Seismic fragility analyses for 3 types of bridges subjected to 4 types of ground motions classified into Site Class A, B, C, D are evaluated according to several scour depths. From the fragility analysis results, it can be observed that the deeper the scour depth, the higher probability of exceeding damage states. Also, seismic failure probability of asymmetric bridge is higher than that of symmetric bridge.

A new analytical model to determine dynamic displacement of foundations adjacent to slope

  • Varzaghani, Mehdi Imani;Ghanbari, Ali
    • Geomechanics and Engineering
    • /
    • 제6권6호
    • /
    • pp.561-575
    • /
    • 2014
  • Estimating seismic displacements has a great importance for foundations on or adjacent to slope surfaces. However, dynamic solution of the problem has received little attention by previous researchers. This paper presents a new analytical model to determine seismic displacements of the shallow foundations adjacent to slopes. For this purpose, a dynamic equilibrium equation is written for the foundation with failure wedge. Stiffness and damping at the sliding surface are considered variable and a simple method is proposed for its estimation. Finally, for different failure surfaces, the calculated dynamic displacement and the surfaces with maximum strain are selected as the critical failure surface. Analysis results are presented as curves for different slope angles and different foundation distances from edge of the slope and are then compared with the experimental studies and software results. The comparison shows that the proposed model is capable of estimating seismic displacement of the shallow foundations adjacent to slopes. Also, the results demonstrate that, with increased slope angle and decreased foundation distances from the slope edge, seismic displacement increases in a non-linear trend. With increasing the slope angle and failure wedge angle, maximum strain of failure wedge increases. In addition, effect of slope on foundation settlement could be neglected for the foundation distances over 3B to 5B.

해상풍력발전 석션기초의 강성산정 방법에 따른 영향 분석 (The Influence of Suction Foundation Models for Offshore Wind Turbine)

  • 장화섭;남현우;곽연민;윤세웅;김호선
    • 한국해안·해양공학회논문집
    • /
    • 제27권5호
    • /
    • pp.339-344
    • /
    • 2015
  • 석션기초는 해양분야의 기초 및 앵커로 널리 사용되고 있으며, 최근 들어 해상풍력발전기의 기초로도 그 활용 범위가 확대되고 있다. 많은 선행 연구로부터 기초구조물의 강성이 해상풍력발전기의 동적응답에 영향을 줄 수 있기 때문에 기초구조물에 대한 적절한 모델링이 필요한 것으로 입증된 바 있다. 본 논문에서는 3차원 유한요소 해석을 수행하여 석션기초의 강성행렬을 산정하였다. 이를 기존의 중력식 기초 강성 산정식에 의한 결과와 비교하였으며, 산정한 강성행렬을 적용하여 구조물의 동적응답과 고유진동수 검토를 위한 통합하중해석을 수행하였다. 해석결과 mudline에서 발생하는 하중에 대한 영향은 크지 않은 것으로 나타났지만, 기초를 고정단으로 모델링한 경우 고유진동수가 최대 약 10% 과대 예측하는 것으로 나타났다. 풍력발전기 공진 회피에 대한 검토 시 기초강성을 고려해야할 것으로 판단된다.

Reinforcement effect of micropile and bearing characteristics of micropiled raft according to the cohesion of soil and stiffness of pile

  • KangIL Lee;MuYeun Kim;TaeHyun Hwang
    • Geomechanics and Engineering
    • /
    • 제37권5호
    • /
    • pp.511-525
    • /
    • 2024
  • Micropiled raft has been used to support the existing and new structures or to provide the seismic reinforcement of foundation systems. Recently, research on micropile or micropiled raft has been actively conducted as the usage of micropile has increased, and the reinforcement effect of pile for the raft, the pile installation methods, and methods for calculating the bearing capacity of micropiled raft have been proposed. In addition, existing research results show that the behavior of this foundation system is different depending on the pile conditions and can be greatly influenced by the characteristics of the upper or lower ground depending on the conditions of pile. In other words, considering that the micropile is a friction pile, it can be predicted that the reinforcing effect of micropile for the raft and the bearing capacity of micropiled raft may depend on the cohesion of upper soil layer depending on the pile conditions. However, existing studies have limitations in that they were conducted without taking this into account. However, existing studies have limitations as they have been conducted without considering these characteristics. Accordingly, this study investigated the reinforcing effect of micropile and the bearing characteristics of micropiled raft by varying the cohesion of upper soil layer and the stiffness of pile which affect the behavior of micropiled raft. In this results, the reinforcing effect of micropile on the raft also increased as the cohesion of soil layer increased, but the reinforcing effect of pile was more effective in ground conditions with decreased the cohesion. In addition, the relationship between the axial stiffness of micropile and the bearing capacity of micropiled raft was found to be a logarithmic linear relationship. It was found that the reinforcing effect of micropile can increase the bearing capacity of raft by 1.33~ 3.72 times depending on the cohesion of soil layer and the rigidity of pile.

Dynamic response of pile foundations with flexible slabs

  • Kaynia, Amir M.
    • Earthquakes and Structures
    • /
    • 제3권3_4호
    • /
    • pp.495-506
    • /
    • 2012
  • An elasto-dynamic model for pile-soil-pile interaction together with a simple plate model is used in this study to assess the effect of flexible foundation slabs on the dynamic response of pile groups. To this end, different pile configurations with various slab thicknessesare considered in two soil media with low and high elastic moduli. The analyses include dynamic impedances and seismic responses of pile-group foundations. The presented results indicate that the stiffness and damping of pile foundations increase with thickness of the foundation slab; however, the results approach those for rigid slab as the slab thickness approaches twice the pile diameter for the cases considered in this study. The results also reveal that pile foundations with flexible slabs may amplify the earthquake motions by as much as 10 percent in the low to intermediate frequency ranges.

Numerical analyses of soil-mat foundation and space frame system

  • Daniel Thangaraj, D.;Ilamparuthi, K.
    • Interaction and multiscale mechanics
    • /
    • 제5권3호
    • /
    • pp.267-284
    • /
    • 2012
  • In most of the design offices, analysis of the frame is carried out without considering the effect of the rigidity of mat. The analysis of the superstructure without modelling the foundation properly and conversely analysing the foundation system without considering the stiffness of the superstructure may mislead the estimation of the forces. This paper examines the parameters, which affect the interaction and they are grouped into relative stiffness factors ${\kappa}_{rs}$ and ${\kappa}_{sb}$. An interaction analysis is performed for the five storeyed space frame of 3 bays ${\times}$ 5 bays, using ANSYS finite element code. The soil was treated as an isotropic, homogenous and elastic half space medium and the following conclusions were drawn from the analyses. The differential settlement is reduced due to interaction and the performance of the mat depends on ${\kappa}_{sb}$ values. The moments $M_x$ and $M_y$ in the corner column at all the storey levels are higher in the case of the interaction analysis than in the conventional analysis. The axial forces in the peripheral columns increased and to that extent, the inner column axial loads are reduced. In the beam, more variation is seen in the support moments than in the span moments.

Effective modeling of beams with shear deformations on elastic foundation

  • Gendy, A.S.;Saleeb, A.F.
    • Structural Engineering and Mechanics
    • /
    • 제8권6호
    • /
    • pp.607-622
    • /
    • 1999
  • Being a significant mode of deformation, shear effect in addition to the other modes of stretching and bending have been considered to develop two finite element models for the analysis of beams on elastic foundation. The first beam model is developed utilizing the differential-equation approach; in which the complex variables obtained from the solution of the differential equations are used as interpolation functions for the displacement field in this beam element. A single element is sufficient to exactly represent a continuous part of a beam on Winkler foundation for cases involving end-loadings, thus providing a benchmark solution to validate the other model developed. The second beam model is developed utilizing the hybrid-mixed formulation, i.e., Hellinger-Reissner variational principle; in which both displacement and stress fields for the beam as well as the foundation are approxmated separately in order to eliminate the well-known phenomenon of shear locking, as well as the newly-identified problem of "foundation-locking" that can arise in cases involving foundations with extreme rigidities. This latter model is versatile and indented for utilization in general applications; i.e., for thin-thick beams, general loadings, and a wide variation of the underlying foundation rigidity with respect to beam stiffness. A set of numerical examples are given to demonstrate and assess the performance of the developed beam models in practical applications involving shear deformation effect.

콘크리트, 잡석에 의한 이질기초 치환효과에 관한 연구 (A Study on Displacement Effect of Different Foundation using Concrete and Rubble)

  • 임해식;박용부
    • 토지주택연구
    • /
    • 제2권2호
    • /
    • pp.189-194
    • /
    • 2011
  • 동일 건축물의 지지력변화 구간이나 이질기초 부위에서 보강방법은 경험적이나 약식검토의 방법으로 처리되고 있으므로 이 문제를 보완하기 위해 해석적 기법에 의한 기초의 안정성을 판단하고 보완할 수 있는 방법을 제시하였다. 이질 기초지반의 치환에 의해 보강효과를 산정하기 위하여는 기초면 하부 지반의 깊이에 따른 영향계수를 고려한 지반강성 평가방법을 적용하여 치환지반의 효과를 판정하여야 한다. 이에 본 논문에서는 잡석치환과 콘크리트 치환에 의해 지반이 보강되는 효과를 나타내는 등가 지반반력계수를 손쉽게 산정할 수 있는 도표와 관계식을 제시하였다.

송전용 철탑기초의 현장수평재하시험을 통한 연결형 말뚝기초의 거동 및 지지력특성 (The Behavior and Resistance of Connected-pile Foundations for Transmission Tower from In-situ Lateral Load Tests)

  • 경두현;이준환;백규호;김대홍;김대학
    • 한국지반공학회논문집
    • /
    • 제28권2호
    • /
    • pp.57-70
    • /
    • 2012
  • 연약지반에 시공되는 송전철탑의 경우 말뚝기초가 주로 사용되나, 부등침하로 인한 철탑구조물의 손상이 유발될 수 있으며, 이에 따라 미국과 일본에서는 4각의 기초를 연결보로 연결한 연결형 기초의 사용을 추천하고 있다. 본 연구에서는 송전철탑에 작용하는 하중조건과 연결보의 강성조건이 연결형 말뚝기초의 수평거동에 미치는 영향을 조사하기 위해서 1/8 규모의 축소모델을 이용한 연결형 말뚝기초의 수평재하시험을 수행하였다. 본 시험결과 연결형 기초는 말뚝기초에 비하여 지지력이 크고 부등변위등의 송전철탑의 안전성을 저해하는 요인에 저항하는 효율적인 기초 형식인 것으로 나타났으며, 특히 연결보의 상대강성에 따른 효과를 분석한 결과 연결보의 강성이 매트의 강성대비 25%에서 연결형 기초의 형식으로 사용의 효율성이 좋은 것으로 나타났다.