사면을 포함한 경사지에 설치된 송전탑, 교각, 고층빌딩 등을 지지하는 말뚝은 풍하중, 지진, 차량 등에 의한 수평하중을 고려하여 설계되어야 한다. 이러한 사면이나 경사지에 설치된 수평하중을 받는 말뚝은 편평한 지반에 비하여, 수평지지력이 감소하기 때문이다. 그러므로 이러한 구조물은 일반적으로 강성이 높고, 대구경의 기초인 피어기초가 사용된다. 수평하중을 받는 피어기초는 일반적으로 장대말뚝과 다른 거동을 한다. 즉, 수평하중에 의하여 말뚝 자체의 회전이 발생하고, 그 회전의 중심점 상부의 사면측의 수동토압에 의존하여 지반파괴가 발생한다는 측면에서 짧은 강성 말뚝과 유사한 거동을 한다. 본 논문은 모래사면의 언덕 근처에 설치된 짧은 말뚝의 수평하중의 영향에 대한 실험 및 수치해석 결과를 포함한다. 대부분을 모형실험과 3차원 탄소성 유한요소해석의 비교, 결과를 기술하였다. 먼저, 사면 언덕에서 모형말뚝까지의 거리를 3종류로 구분하여 단항의 모형실험과 군항말뚝의 수평하중 특성을 파악하기 위하여 수평지반과 사면지반(경사 30$^{\circ}$)에 대하여 말뚝중심간의 거리를 각2종류로 모형실험을 실시하였다. 동시에 3차원 탄소성 유한요소법에 의한 수치해석을 통하여 모형실험의 결과와의 비교를 시도하였다. 사용된 모래지반은 배수조건하에서 삼축압축실험으로 재현하였다. 3차원 탄소성 유한요소해석에서 완전탄소성모델의 파괴기준은 Mohr-Coulomb식, 소성 포텐셜은 Drucker-Prage식을 이용한 MC-DP모델을 적용하였다. 연구결과, 3차원탄소성 유한요소법이 사질토 지반에 설치된 짧은 말뚝의 수평거동을 파악하는데 유효하다는 것을 확인하였다.
사면을 포함한 경사지에 설치된 송전탑, 교각, 고층빌딩 등을 지지하는 말뚝은 풍하중, 지진, 차량 등에 의한 수평하중을 고려하여 설계되어야 한다. 이러한 사면이나 경사지에 설치된 수평하중을 받는 말뚝은 편평한 지반에 비하여, 수평지지력이 감소하기 때문이다. 그러므로 이러한 구조물은 일반적으로 강성이 높고, 대구경의 기초인 피어기초가 사용된다. 수평하중을 받는 피어기초는 일반적으로 장대말뚝과 다른 거동을 한다. 즉, 수평하중에 의하여 말뚝 자체의 회전이 발생하고, 그 회전의 중심점 상부의 사면측의 수동토압에 의존하여 지반파괴가 발생한다는 측면에서 짧은 강성 말뚝과 유사한 거동을 한다. 본 논문은 모래사면의 언덕 근처에 설치된 짧은 말뚝의 수평하중의 영향에 대한 실험 및 수치해석 결과를 포함한다. 대부분을 모형실험과 3차원 탄소성 유한요소해석의 비교, 결과를 기술하였다. 먼저, 사면 언덕에서 모형말뚝까지의 거리를 3종류로 구분하여 단항의 모형실험과 군항말뚝의 수평하중 특성을 파악하기 위하여 수평지반과 사면지반(경사 30$^{\circ}$)에 대하여 말뚝중심간의 거리를 각2종류로 모형실험을 실시하였다. 동시에 3차원 탄소성 유한요소법에 의한 수치해석을 통하여 모형실험의 결과와의 비교를 시도하였다. 사용된 모래지반은 배수조건하에서 삼축압축실험으로 재현하였다. 3차원 탄소성 유한요소해석에서 완전탄소성모델의 파괴기준은 Mohr-Coulomb식, 소성 포텐셜은 Drucker-Prage식을 이용한 MC-DP모델을 적용하였다. 연구결과, 3차원탄소성 유한요소법이 사질토 지반에 설치된 짧은 말뚝의 수평거동을 파악하는데 유효하다는 것을 확인하였다.
Many transmission towers, high-rise buildings and bridges are constructed near steep slopes and are supported by large-diameter piles. These structures may be subjected to large lateral loads, such as violent winds and earthquakes. Widely used types of foundations for these structures are pier found...
Many transmission towers, high-rise buildings and bridges are constructed near steep slopes and are supported by large-diameter piles. These structures may be subjected to large lateral loads, such as violent winds and earthquakes. Widely used types of foundations for these structures are pier foundations, which have large-diameters with high stiffness. The behavior of a pier foundation subjected to lateral loads is similar to that of a short rigid pile because both elements seem to fail by rotation developing passive resistance on opposite faces above and below the rotation point, unlike the behavior of a long flexible pile. This paper describes the results of several numerical studies performed with a three-dimensional finite element method (FEM) of model tests of a laterally loaded short pile located near slopes, respectively. In this paper, the results of model tests of single piles and pile groups subjected to lateral loading, in homogeneous sand with 30$^{\circ}$ slopes and horizontal ground were analyzed by the 3-D FE analyses. The pile was assumed to be linearly elastic. The sand was assumed to have non-associative characteristics, following the MC-DP model. The failure criterion is governed by the Mohr-Coulomb equation and the plastic potential is given by the Drucker-Prager equation. The main purpose of this paper is the validation of the 3-D elasto-plastic FEM by comparisons with the experimental data.
Many transmission towers, high-rise buildings and bridges are constructed near steep slopes and are supported by large-diameter piles. These structures may be subjected to large lateral loads, such as violent winds and earthquakes. Widely used types of foundations for these structures are pier foundations, which have large-diameters with high stiffness. The behavior of a pier foundation subjected to lateral loads is similar to that of a short rigid pile because both elements seem to fail by rotation developing passive resistance on opposite faces above and below the rotation point, unlike the behavior of a long flexible pile. This paper describes the results of several numerical studies performed with a three-dimensional finite element method (FEM) of model tests of a laterally loaded short pile located near slopes, respectively. In this paper, the results of model tests of single piles and pile groups subjected to lateral loading, in homogeneous sand with 30$^{\circ}$ slopes and horizontal ground were analyzed by the 3-D FE analyses. The pile was assumed to be linearly elastic. The sand was assumed to have non-associative characteristics, following the MC-DP model. The failure criterion is governed by the Mohr-Coulomb equation and the plastic potential is given by the Drucker-Prager equation. The main purpose of this paper is the validation of the 3-D elasto-plastic FEM by comparisons with the experimental data.
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가설 설정
2) The lateral resistance of the single short pile decreases, as its location is closer to the crest of the slope. The reduction of the lateral resistance due to the slope effect is influenced markedly in the small displacement range and is not so changed as the displacement increases.
4) The load distribution ratio of the leading piles decreases as the pile spacing gets larger. This response is related to the effect of the leading piles on the yield zones developed in the soil ahead of the trailing pile.
제안 방법
The results of model tests of single piles and pile groups subjected to lateral loading in homogeneous sand with 30° slopes are analyzed by the 3-D elasto-plastic FEM. To compare with slope cases, cases of piles located in horizontal ground are also investigated.
Taking differences in the initial stress conditions of the ground (e.g. slope, horizontal ground) into consideration, calculations in the FE analysis were carried out in a two-step process. In the first step, the initial stress condition due to the dead weight of the soil was calculated using the shear strength reduction finite element method (SSR-FEM) [19], without taking the existence of the pile into consideration.
in Table 3. The single short pile model tests were conducted considering 3 different horizontal' distances beyond the crest of the slope (0D, 2D, 4D (D: diameter of pile)). To compare with the slope effect, analysis of the horizontal ground case was also performed.
This study is an extension of the work, which describes the model test and the FE analysis of laterally loaded short single piles located near slopes. Intuitively, short pile groups located near slopes should have a significant effect upon the pile response to lateral loading, however, relatively little information is available to guide designers in quantifying this effect.
Model pile tests were carried out to investigate the behavior of the laterally loaded short pile groups located at the crest of 30° slopes. To assess the slope effect in short pile groups, the model tests and analyses for horizontal ground cases were also performed.
The main purpose of this paper is to find out that the 3-D elasto-plastic FEM is very effective in evaluating the lateral resistance of a short pile placed on near slopes. Based on model tests and numerical modeling, several conclusions can be issued as follows:
대상 데이터
The 30o slope surface was formed by excavation. The model pile was made of smooth aluminum with a wall thickness of 3 mm and outside diameter of 100 mm. It was buried 500 mm deep in the ground for a constant embedment depth / diameter (De / D) ratio of 5.
이론/모형
The sand was assumed to have non-associative characteristics, following the MC-DP model. The failure criterion is governed by the Mohr-Coulomb equation and the plastic potential is given by the Drucker-Prager equation. Such a combination is useful for the improvement of the convergence of the FE calculations [14].
slope, horizontal ground) into consideration, calculations in the FE analysis were carried out in a two-step process. In the first step, the initial stress condition due to the dead weight of the soil was calculated using the shear strength reduction finite element method (SSR-FEM) [19], without taking the existence of the pile into consideration. The second step was to simulate the behavior of the soil as the lateral displacement at the pile head is applied incrementally.
The second step was to simulate the behavior of the soil as the lateral displacement at the pile head is applied incrementally. The iterative elasto-plastic computations were carried out using the modified Newton-Raphson method.
성능/효과
3) For a short pile group near the crest of a slope, a significant reduction in the group efficiency is observed as the displacement of pile head increases. Nevertheless, the group efficiency on the horizontal ground appears to be relatively constant.
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