• 제목/요약/키워드: soil-pile interface

검색결과 74건 처리시간 0.022초

지반-구조뭍간 상호작용을 고려한 암반에 근입된 현장타설말뚝의 거동 (The Behavior of the Cast-in-place Pile Socketed in Rock Considering Soil-Structure Interaction)

  • 최진오;권오성;김명모
    • 한국암반공학회:학술대회논문집
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    • 한국암반공학회 2000년도 암반공학문제의 수치해석(Numerical Analysis in Rock Engineering Problems)
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    • pp.211-222
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    • 2000
  • 대형 구조물 기초로 암반에 근입된 현장타설말뚝의 사용이 현저히 증가하고 있음에도 암반의 공학적 물성과 설계정수와의 관련이 명확히 정립되지 못한실정이다. 이에 본 연구에서는 암반근입말뚝의 거동 특성을 이론적으로 연구하고, 이를 수치적으로 모델링하기 위하여 지반-구조물 상호작용에 관련한 경계면 물성을 기존 연구 결과에 기초하여 합리적으로 산정하였다. 암반의 물성과 경계면 물성간의 관계를 이용하여 암반근입말뚝의 거동을 수치적으로 모사할 수 있으며 , 또한 현장 계측을 통해 얻은 말뚝의 하중전이 양상이 수치적으로 모사된 결과와 잘 일치함을 확인하였다.

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지반-구조물간 상호작용을 고려한 암반에 근입된 현장타설말뚝의 거동 (The Behavior of the Cast-in-place Pile Socketed in Rock Considering Soil-Structure Interaction)

  • 최진오;권오성;김명모
    • 터널과지하공간
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    • 제10권3호
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    • pp.457-468
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    • 2000
  • 대형 구조물 기초로 암반에 근입된 현장타설말뚝의 사용이 현저히 증가하고 있음에도 암반의 공학적 물성과 설계정수와의 관련이 명확히 정립되지 못한 실정이다. 이에 본 연구에서는 암반근입말뚝의 거동 특성을 이론적으로 연구하고, 이를 수치적으로 모델링하기 위하여 지반-구조물 상호작용에 관련한 경계면 물성을 기존 연구 결과에 기초하여 합리적으로 산정 하였다. 암반의 물성과 경계면 물성간의 관계를 이용하여 암반근입말뚝의 거동을 수치적으로 모사 할 수 있으며, 또한 현장 계측을 통해 얻은 말뚝의 하중전이 양상이 수치적으로 모사 된 결과와 잘 일치함을 확인하였다.

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Building frame-pile foundation-soil interactive analysis

  • Chore, H.S.;Ingle, R.K.;Sawant, V.A.
    • Interaction and multiscale mechanics
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    • 제2권4호
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    • pp.397-411
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    • 2009
  • The effect of soil-structure interaction on a simple single storeyed and two bay space frame resting on a pile group embedded in the cohesive soil (clay) with flexible cap is examined in this paper. For this purpose, a more rational approach is resorted to using the three dimensional finite element analysis with realistic assumptions. The members of the superstructure and substructure are descretized using 20 node isoparametric continuum elements while the interface between the soil and pile is modeled using 16 node isoparametric interface elements. Owing to viability in terms of computational resources and memory requirement, the approach of uncoupled analysis is generally preferred to coupled analysis of the system. However, an interactive analysis of the system is presented in this paper where the building frame and pile foundation are considered as a single compatible unit. This study is focused on the interaction between the pile cap and underlying soil. In the parametric study conducted using the coupled analysis, the effect of pile spacing in a pile group and configuration of the pile group is evaluated on the response of superstructure. The responses of the superstructure considered include the displacement at top of the frame and moments in the superstructure columns. The effect of soil-structure interaction is found to be quite significant for the type of foundation used in the study. The percentage variation in the values of displacement obtained using the coupled and uncoupled analysis is found in the range of 4-17 and that for the moment in the range of 3-10. A reasonable agreement is observed in the results obtained using either approach.

지반-구조물간 경계면 효과를 고려한 BARRETTE 말뚝의 거동 (Soil-Structure Interface Effects on Barrette Pile Behaviors)

  • 이상래;박성완;임대성
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2009년도 춘계 학술발표회
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    • pp.102-107
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    • 2009
  • Recently, the use of barrette pile is remarkably increased specially for high-rise building and bridge foundations. However, on the contrary, very few studies have been made for analyzing barrette pile behavior considering interface behavior between pile and soils around. Therefore, in this paper, these effects are evaluated by using the 3-dimensional non-linear finite element method with the results of full-scale pile load test from the fields. In addition to that, the selection of proper stiffness modulus on the pile interface is discussed.

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지하수 pH조건을 고려한 말뚝-지반 접촉면의 동적 전단거동 특성 (Characteristics of Dynamic Shear Behavior of Pile-Soil Interface Considering pH Conditions of Groundwater)

  • 곽창원
    • 한국지반공학회논문집
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    • 제38권5호
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    • pp.5-17
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    • 2022
  • 말뚝(pile)은 연약한 지반에 구조물을 설치하기 위하여 지중에 관입시키는 매개체로서, 특히 PHC말뚝은 설계기준강도 80MPa 이상의 고강도 콘크리트를 사용하여 제작하므로 압축력과 휨모멘트에 대한 저항성이 우수하다. 또한 강관 말뚝 대비 경제성에서 유리하며 공장에서 생산되므로 품질확보 및 관리가 용이하다. 하지만 PHC말뚝의 설계 시 지지력에 영향을 미치는 주면마찰력은 단순히 경험식 또는 N값 등을 이용한 추정치에 의한 설계가 이루어지고 있으며, 특히 최근 빈도수가 급증하고 있는 국내 지진에 대하여 PHC말뚝 주면부에 형성되는 지반과의 접촉면 동적거동에 관한 실험적 연구 사례는 미미한 실정이다. 또한 지반 내 지하수의 pH 값과 같은 지반환경적 요소 역시 고려되지 않고 있다. 본 연구에서는 지하수의 pH 값을 고려하여 산성, 중성, 염기성 용액에 1개월간 수침시킨 콘크리트 시료를 점토의 구성광물인 카올리나이트 시료와 접촉시키고, 반복 단순전단시험을 수행하였다. 반복 단순전단시험은 상재압 0.2MPa 및 0.4MPa에 대하여 각각 수행하였고 그 결과를 비교하였다. 또한 접촉면의 동적 거동을 합리적으로 표현하기 위하여 교란상태개념(Disturbed State Concept)을 도입하여 교란상태함수를 구성하는 매개변수를 도출하였다. 그 결과 염기성 수침시료에 대하여 접촉면의 교란도가 가장 급격히 증가하였고 구속압이 작을 경우 보다 작은 누적 전단변형률에서 조기에 접촉면이 파괴상태에 근접하는 결과를 나타내었다. 또한 이러한 경향을 정량적으로 표현하는 교란상태함수의 매개변수를 새로이 제시하였다.

Study on the behaviour of pre-existing single piles to adjacent shield tunnelling by considering the changes in the tunnel face pressures and the locations of the pile tips

  • Jeon, Young-Jin;Jeon, Seung-Chan;Jeon, Sang-Joon;Lee, Cheol-Ju
    • Geomechanics and Engineering
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    • 제21권2호
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    • pp.187-200
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    • 2020
  • In the current work, a series of three-dimensional finite element analyses have been conducted to investigate the behaviour of pre-existing single piles in response to adjacent tunnelling by considering the tunnel face pressures and the relative locations of the pile tips with respect to the tunnel. Via numerical modelling, the effect of the face pressures on the pile behaviour has been analysed. In addition, the analyses have concentrated on the ground settlements, the pile head settlements and the shear stress transfer mechanism at the pile-soil interface. The settlements of the pile directly above the tunnel crown (with a vertical distance between the pile tip and the tunnel crown of 0.25D, where D is the tunnel diameter) with a face pressure of 50% of the in situ horizontal soil stress at the tunnel springline decreased by approximately 38% compared to the corresponding pile settlements with the minimum face pressure, namely, 25% of the in situ horizontal soil stress at the tunnel springline. Furthermore, the smaller the face pressure is, the larger the tunnelling-induced ground movements, the axial pile forces and the interface shear stresses. The ground settlements and the pile settlements were heavily affected by the face pressures and the positions of the pile tip with respect to the tunnel. When the piles were inside the tunnel influence zone, tensile forces were induced on piles, while compressive pile forces were expected to develop for piles that are outside the influence zone and on the boundary. In addition, the computed results have been compared with relevant previous studies that were reported in the literature. The behaviour of the piles that is triggered by adjacent tunnelling has been extensively examined and analysed by considering the several key features in substantial detail.

탄소성 지반중의 횡각을 받는 말뚝의 유한요소법에 의한 삼차원 해석에 관한 연구 (Three-Dimensional Analysis of the Laterally Loaded Pile in Elasto-Plastic Soil by Finite Element Method)

  • 박성재;배종순
    • 한국지반공학회지:지반
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    • 제2권2호
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    • pp.5-16
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    • 1986
  • 말뚝두부에 무시할 수 없을 정도의 큰 횡력이 작용할 때 이에 대한 합리적인 해석이 있어야 한다. 이같은 해석에 있어서는, 말뚝과 말뚝 주위 지반과의 복잡한 상호작용 때문에 어려움이 많다. 본 연구의 목적은 말뚝 주위 지반을 탄소성체로 가정하고, 말뚝과 지반사이 경계요소를 가정하여 유한요소법에 의해 삼차원 해석 프로그램을 개발하는데 있다. 본 연구의 결과, 지반을 탄소성체로 가정한 해석결과가 현장측정치와 잘 일치함과, 말뚝과 주위지반의 불연속성을 환경요소로 극복할 수 있음과 경계요소의 두께 변화가 해석결과에 큰 영향을 주지 않으나, 되도록 얇게 함이 정도 높은 결과를 얻음을 확인하였다.

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Interaction analysis of a building frame supported on pile groups

  • Dode, P.A.;Chore, H.S.;Agrawal, D.K.
    • Coupled systems mechanics
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    • 제3권3호
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    • pp.305-318
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    • 2014
  • The study deals with the physical modeling of a typical building frame resting on pile foundation and embedded in cohesive soil mass using complete three-dimensional finite element analysis. Two different pile groups comprising four piles ($2{\times}2$) and nine piles ($3{\times}3$) are considered. Further, three different pile diameters along with the various pile spacings are considered. The elements of the superstructure frame and those of the pile foundation are descretized using twenty-node isoparametric continuum elements. The interface between the pile and pile and soil is idealized using sixteen-node isoparametric surface elements. The current study is an improved version of finite element modeling for the soil elements compared to the one reported in the literature (Chore and Ingle 2008). The soil elements are discretized using eight-, nine- and twelve-node continuum elements. Both the elements of superstructure and substructure (i.e., foundation) including soil are assumed to remain in the elastic state at all the time. The interaction analysis is carried out using sub-structure approach in the parametric study. The total stress analysis is carried out considering the immediate behaviour of the soil. The effect of various parameters of the pile foundation such as spacing in a group and number piles in a group, along with pile diameter, is evaluated on the response of superstructure. The response includes the displacement at the top of the frame and bending moment in columns. The soil-structure interaction effect is found to increase displacement in the range of 58 -152% and increase the absolute maximum positive and negative moments in the column in the range of 14-15% and 26-28%, respectively. The effect of the soil- structure interaction is observed to be significant for the configuration of the pile groups and the soil considered in the present study.

Inelastic transient analysis of piles in nonhomogeneous soil

  • Kucukarslan, S.;Banerjee, P.K.
    • Structural Engineering and Mechanics
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    • 제26권5호
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    • pp.545-556
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    • 2007
  • In this paper, a hybrid boundary element technique is implemented to analyze nonlinear transient pile soil interaction in Gibson type nonhomeogenous soil. Inelastic modeling of soil media is presented by introducing a rational approximation to the continuum with nonlinear interface springs along the piles. Modified $\ddot{O}$zdemir's nonlinear model is implemented and systems of equations are coupled at interfaces for piles and pile groups. Linear beam column finite elements are used to model the piles and the resulting governing equations are solved using an implicit integration scheme. By enforcing displacement equilibrium conditions at each time step, a system of equations is generated which yields the solution. A numerical example is performed to investigate the effects of nonlinearity on the pile soil interaction.

지반-말뚝 상호작용계의 강제진동해석 (A Forced Vibration Analysis of Soil-Pile Interaction System)

  • 김민규
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 2001년도 춘계학술대회 논문집
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    • pp.136-143
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    • 2001
  • In this study, a numerical analysis for soil-pile interaction systems in multi-layered half planes under a forced vibration is presented. The soil-pile interaction system is divided into two parts, so called near field and far field. The near field soil using finite elements and piles using beam elements are modeled. The far field soil media is implemented using boundary elements those can automatically satisfy the condition of wave radiation. These two fields are numerically coupled by imposing displacement compatibility condition at the interface between the near field and the far field. For the verification, the forced vibration test was simulated and the response under horizontal and vertical harmonic loads at the pile cap in the layered half plane was determined. The results are compared to the theoretical and experimental results of the literatures to verify the proposed soil-pile interaction analysis formulation.

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