• 제목/요약/키워드: Pile Group

검색결과 248건 처리시간 0.023초

수평력을 받는 무리말뚝의 하중분담특성 (The Load Distribution Characteristics of Pile Group under Lateral Loading)

  • 안병철;오세욱
    • 한국지반환경공학회 논문집
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    • 제11권3호
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    • pp.17-22
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    • 2010
  • 본 연구에서는 풍화토 지반에 설치된 수평하중을 받는 H-pile 무리말뚝의 하중분담특성 및 상호작용계수(p-multiplier)를 분석하였다. 말뚝의 배열($2{\times}3$, $3{\times}3$), 말뚝의 간격(2D, 4D, 6D), 그리고 지반밀도(상대밀도:40%, 80%)를 고려한 수평재하 실험을 실시한 결과 다음과 같은 결과를 얻을 수 있었다. 무리말뚝내 각각의 말뚝에 작용된 평균수평하중은 말뚝의 수가 감소할수록 평균수평저항력이 증가하는 것으로 나타났다. 말뚝간격과 지반밀도에 따라 단말뚝과 무리말뚝의 p-y곡선을 분석한 결과 말뚝간격이 2D에서 6D로 증가함에 따라 무리말뚝의 상호작용계수값이 느슨한 지반의 경우 0.85~0.94(앞열말뚝), 0.57~0.79(중간말뚝), 0.60~0.71(후열말뚝), 조밀한 지반의 경우 0.76~0.82(앞열말뚝), 0.58~0.73(중간말뚝), 0.53~0.70(후열말뚝)의 값을 각각 나타냈다. 이와같이 단말뚝과 무리말뚝간 상호작용계수는 말뚝간격이 증가할수록 그 값이 증가함을 알 수 있었으며, 또한 앞열의 무리말뚝이 중간 및 후열말뚝들보다 보다 큰 상호작용계수 값을 나타냈다.

무리말뚝의 하중분담율에 관한 실험적 연구 (The Experimental Study on Load Sharing Ratio of Group Pile)

  • 권오균;오세붕;김진복;박종운
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2005년도 춘계 학술발표회 논문집
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    • pp.65-70
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    • 2005
  • In this study, the large scale model tests were executed to estimate the Load Sharing Ratio(LSR) of raft in a piled footing under various conditions. The conditions such as the subsoil type, pile length, pile spacing, array type and pile installation method etc. were varied in the pile loading tests about the free-standing group piles and a piled footing. As the results of this study, it was found that there were no differences of the load-settlement curves, along with the pile installation method and subsoil type. The piles supported most of the external load until a yielding load of the piled footing, but the raft supported a considerable load after a yielding load. And it was also found that the LSR didn't be affected by the pile installation method and the subsoil type. As the relative density of sands increased, the LSR decreased. As the pile spacing was wider and the pile length increased, there was a tendancy for the LSR to increase.

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경사지반에 설치된 단일말뚝과 무리말뚝의 동적 상호작용 (Dynamic Interaction of Single and Group Piles in Sloping Ground)

  • ;유병수;김성렬
    • 한국지반공학회논문집
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    • 제36권1호
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    • pp.5-15
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    • 2020
  • 말뚝의 동적거동은 말뚝과 지반 사이의 동적 상호작용에 큰 영향을 받는다. 특히, 경사지반에 설치된 말뚝은 진동방향에 따른 지반저항력 차이, 지반 변위 등에 의해 말뚝-지반 동적상호작용이 매우 복잡해진다. 본 연구에서는 건조 사질토 경사지반에 설치된 단일말뚝과 2×2 무리말뚝에 대하여 동적 원심모형실험을 수행하였다. 그리고, 말뚝과 지반 변위 사이의 위상차 및 동적 p-y 곡선 등을 산정하여 경사지반, 단일말뚝과 무리말뚝, 입력가속도 진폭 등의 조건이 말뚝-지반 동적 상호작용에 미치는 영향을 분석하였다. 그 결과, 지반-말뚝 사이의 운동학적 힘이 말뚝의 동적거동에 큰 영향을 주며, 동적 p-y 곡선이 지반경사, 잔류변위, 운동학적 힘의 영향 등으로 매우 복잡한 형상을 보여주는 것으로 나타났다.

Evaluating the impacts of using piles and geosynthetics in reducing the settlement of fine-grained soils under static load

  • Shariati, Mahdi;Azar, Sadaf Mahmoudi;Arjomand, Mohammad-Ali;Tehrani, Hesam Salmani;Daei, Mojtaba;Safa, Maryam
    • Geomechanics and Engineering
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    • 제20권2호
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    • pp.87-101
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    • 2020
  • The construction of combined pile-raft foundations is considered as the main option in designing foundations in high-rise buildings, especially in soils close to the ground surface which do not have sufficient bearing capacity to withstand building loads. This paper deals with the geotechnical report of the Northern Fereshteh area of Tabriz, Iran, and compares the characteristics of the single pile foundation with the two foundations of pile group and geogrid. Besides, we investigate the effects of five principal parameters including pile diameter and length, the number of geogrid layers, the depth of groundwater level, and pore water pressure on vertical consolidation settlement and pore water pressure changes over a year. This study assessed the mechanism of the failure of the soil under the foundation using numerical analysis as well. Numerical analysis was performed using the two-dimensional finite element PLAXIS software. The results of fifty-four models indicate that the diameter of the pile tip, either as a pile group or as a single pile, did not have a significant effect on the reduction of the consolidation settlement in the soil in the Northern Fereshteh Street region. The optimum length for the pile in the Northern Fereshteh area is 12 meters, which is economically feasible. In addition, the construction of four-layered ten-meter-long geogrids at intervals of 1 meter beneath the deep foundation had a significant preventive impact on the consolidation settlement in clayey soils.

사질토와 점성토가 혼재하는 해안 매립지반에서 조합형 Sheet Pile의 거동에 관한 해석적 연구 (The Numerical Analysis on the Behaviour of Combined Sheet Pile in the Reclaimed Ground Mixed by Sandy Soil and Clayey Soil)

  • 김병일;김영선;한상재;박언상
    • 한국지반신소재학회논문집
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    • 제19권3호
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    • pp.9-21
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    • 2020
  • 본 연구에서는 사질토와 점성토가 혼재하는 해안 매립지반에서 조합형 Sheet Pile 공법의 설계법을 고찰하였고 지반 굴착시의 거동을 해석하였다. 조합형 Sheet Pile 공법의 형태(Built up, Interlocking, Welding) 및 해석방법(엄지말뚝법, 연속벽법)에 따라 흙막이 가시설의 예측 거동이 상이함을 탄소성 해석으로부터 확인하였다. Sheet Pile(측면말뚝) 부재력의 경우 연속벽체 해석법의 결과가 가장 보수적인 결과를 예측하였다. 조합형 Sheet Pile 공법의 최대 부재력을 토대로 각 부재별 응력비(발생/허용)를 분석하면 측면말뚝의 경우 휨, 버팀보의 경우 조합응력에서 최대값을 나타내었다. 유한요소해석결과 측면말뚝의 부재력은 단기 유효응력 해석 조건에서 가장 크게 나타난 반면, 버팀보의 압축력은 압밀 해석에서 크게 나타났다. 탄소성 해석과 유한요소해석 결과를 비교하면, 측면말뚝의 전단력과 버팀보의 축력은 탄소성 해석에서 크게 평가되었고, 측면말뚝의 휨은 유한요소해석의 단기 유효응력 조건에서 가장 큰 것으로 나타났다. 또한, 측면말뚝의 변위는 탄소성 해석보다는 유한요소해석에서 더 크게 예측되었다.

말뚝 간격에 따른 에너지 파일의 열적 거동분석 (Effect of Group Spacing of Energy Piles on Thermal Analysis)

  • 민혜선;윤태섭;정상섬
    • 한국지반공학회논문집
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    • 제27권8호
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    • pp.39-50
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    • 2011
  • 본 논문에서는 지열을 이용한 PHC 말뚝형 에너지 파일의 계절별 유속변화에 따른 열교환율과 단독말뚝의 열교환율을 100시간 운용 시 포화지반 조건에 한정하여 수치해석을 수행하였다. 해석결과 동절기 및 하절기일 때 100시간 운용 시 평균 열교환율은 약 55 W/m, 47 W/m로 나타났으며, 순환수 유속이 증가할수록 전체적인 열교환율이 상승하였다. 동절기에 말뚝간격 3D 및 5D(D:말뚝직경) 배치 시 0.6m/s의 순환수 유속에 따른 열적거동을 분석결과 지반과의 열적 자유면이 많은 외곽부일수록 열효율이 증가하였다. 또한, 3D 및 5D 간격의 평균 열교환율은 약 48.5 W/m, 51 W/m로 말뚝간격이 증가할수록 열교환율이 향상되는 것으로 나타났으며, 단독말뚝의 열교환율 대비 상대적으로 3D 및 5D 간격의 군말뚝은 각각 89% 및 93%보 떨어지는 것을 알 수 있었다.

교량 말뚝기초의 단부 지점조건의 영향분석 (Influence of Pile Cap's Boundary Conditions in Piled Pier Structures)

  • 정상섬;원진오
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2005년도 춘계 학술발표회 논문집
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    • pp.25-32
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    • 2005
  • Modeling techniques of piled pier were reviewed and the influences of pile cap's boundary conditions were analyzed in this study. Among various modeling techniques, equivalent cantilever method seems relatively simple for modeling pile groups and it has some problems to determine the virtual fixed points. Through the analyses, it was found that the method of nonlinear p-y model with soil springs was more appropriate than equivalent cantilever method. The method modeling a pile group using stiffness matrix seems useful for practical design, which can represent the nonlinear three-dimensional behavior of a piled pier. In this study, the stiffness matrix of a pile group could be estimated efficiently and precisely using three-dimensional nonlinear analysis programs of pile groups (FBPier 3.0, YSGroup).

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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.

Settlement analysis of pile cap with normal and under-reamed piles

  • Kumar, Madisetti Pavan;Raju, P. Markandeya;Jasmine, G. Vincent;Aditya, Mantini
    • Computers and Concrete
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    • 제25권6호
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    • pp.525-535
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    • 2020
  • The use of pile foundations has become more popular in recent years, as the combined action of the pile cap and the piles can increase the bearing capacity, reduce settlement, and the piles can be arranged so as to reduce differential deflection in the pile cap. Piles are relatively long, slender members that transmit foundation loads through soil strata of low bearing capacity to deeper soil or rock strata having a high bearing capacity. In this study analysis of pile cap with considering different parameters like depth of the pile cap, width and breadth of the pile cap, type of piles and different types of soil which affect the behaviour of pile cap foundation is carried out by using Finite Element Software ANSYS. For understanding the settlement behaviour of pile cap foundation, parametric studies have been carried out in four types of clay by varying pile cap dimensions with two types of piles namely normal and under-reamed piles for different group of piles. Furthermore, the analysis results of settlement and stress values for the pile cap with normal and under-reamed piles are compared. From the study it can be concluded that settlement values of pile cap with under-reamed pile are less than the settlements of pile cap with normal pile. It means that the ultimate load bearing capacity of pile cap with under-reamed piles are greater than the pile cap with normal piles.

Impact of soft and stiff soil interlayers on the pile group dynamic response under lateral harmonic load

  • Masoud Oulapour;Sam Esfandiari;Mohammad M. Olapour
    • Geomechanics and Engineering
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    • 재33권6호
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    • pp.583-596
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    • 2023
  • The interlayers, either softer or stiffer than the surrounding layers, are usually overlooked during field investigation due to the small thickness. They may be neglected through the analysis process for simplicity. However, they may significantly affect the dynamic behavior of the soil-foundation system. In this study, a series of 3D finite-element Direct-solution steady-state harmonic analyses were carried out using ABAQUS/CAE software to investigate the impacts of interlayers on the dynamic response of a cast in place pile group subjected to horizontal harmonic load. The experimental data of a 3×2 pile group testing was used to verify the numerical modeling. The effects of thickness, depth, and shear modulus of the interlayers on the dynamic response of the pile group are investigated. The simulations were conducted on both stiff and soft soils. It was found that the soft interlayers affect the frequency-amplitude curve of the system only in frequencies higher than 70% of the resonant frequency of the base soil. While, the effect of stiff interlayer in soft base soil started at frequency of 35% of the resonant frequency of the base soil. Also, it was observed that a shallow stiff interlayer increased the resonant amplitude by 11%, while a deep one only increased the resonant frequency by 7%. Moreover, a shallow soft interlayer increased the resonant frequency by 20% in soft base soils, whereas, it had an effect as low as 6% on resonant amplitude. Also, the results showed that deep soft interlayers increased the resonant amplitude by 17 to 20% in both soft and stiff base soils due to a reduction in lateral support of the piles. In the cases of deep thick, soft interlayers, the resonant frequency reduced significantly, i.e., 16 to 20%. It was found that the stiff interlayers were most effective on the amplitude and frequency of the pile group.