• 제목/요약/키워드: ultimate pile capacity

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성토지반에 타입된 H형강 말뚝의 지지거동 (Bearing Capacity of Driven H-Piles in Embankment)

  • 박영호;정경자;김성환;유성근;이재혁;박종면
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2000년도 봄 학술발표회 논문집
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    • pp.173-182
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    • 2000
  • To find axial and lateral responses of impact-driven H piles in embankment(SM), the H piles are instrumented with electric strain gages, dynamic load test is performed during driving, and then the damage of strain gages is checked simultaneously. Axially and laterally static load tests are performed on the same piles after one to nine days as well. Then load-settlement behavior is measured. Furthermore, to find the set-up effect in H pile, No. 4, 16, 26, and R6 piles are restriked about 1, 2, and 14 days after driving. As results, ram height and pile capacity obtained from impact driving control method become 80cm and 210.3∼242.3ton, respectively. At 15 days after driving, allowable bearing capacity by CAPWAP analysis, which 2.5 of the factor of safety is applied for ultimate bearing capacity, increases 10.8%. Ultimate bearing capacity obtained from axially static load test is 306∼338ton. This capacity is 68.5∼75.7% at yield force of pile material and is 4∼4.5 times of design load. Allowable bearing capacity using 2 of the factor of safety is 153∼169ton. Initial stiffness response of the pile is 27.5ton/mm. As the lateral load increases, the horizontal load-settlement behaves linearly to which the lateral load reaches up to 17ton. This reason is filled with sand in the cavity formed between flange and web during pile driving. As the result of reading with electric strain gages, flange material of pile is yielded at 19ton in horizontal load. Thus allowable load of this pile material is 9.5ton when the factor of safety is 2.0. Allowable lateral displacement of this pile corresponding to this load is 23∼36mm in embankment.

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대구경 현장타설말뚝의 대용량 양방향 말뚝재하시험 분석 및 극한지지력 추정을 위한 수치해석 연구 (A Numerical Analysis Study for Estimation of Ultimate Bearing Capacity and An Analysis of the High Capacity Bi-directional Pile Load Tests of the Large-diameter Drilled Shafts)

  • 남문석;김상일;홍석우;황성춘;최용규
    • 한국지반환경공학회 논문집
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    • 제12권10호
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    • pp.63-72
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    • 2011
  • 초고층 건축물 기초의 고용량 하중 지지능력을 확인할 수 있는 가장 현실적인 방안인 고유압방식의 고용량 양방향 말뚝재하시험을 2개 현장에서 실시하였다. 고유압 복동식 양방향 말뚝재하시험은 정재하시험 시 재하용량 한계와 현장조건의 제약을 극복 할 수 있는 가장 현실적인 방안으로 볼 수 있었으며 고용량이 필요한 시험말뚝에 대한 재하시험에 매우 유용한 시험방법으로 판단되었다. 2개의 사례에서 계산된 설계하중 충족비는 각각 3.3, 2.1이었으므로 사례(P-2)에서 1방향 재하하중을 다소 작게 재하하였더라면 말뚝기초의 안정성을 실증적으로 확인하지 못하였을 것으로 판단되었다. 초고용량의 양방향 말뚝재하시험에서 설정한 최대하중까지 재하하더라도 말뚝 및 지반의 극한상태를 확인하는 것은 쉽지 않았으므로 대구경 현장타설말뚝의 극한지지력을 추정하기 위하여 2개의 고용량 대구경 현장타설말뚝에 대한 수치해석을 실시하였다.

H-pile의 지지력 특성 및 동역학적 공식의 신뢰도 평가 (Characteristics of Bearing Capacity and Reliability-based Evaluation of Pile-Driving Formulas for H Pile)

  • 오세욱;이준대
    • 한국안전학회지
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    • 제18권1호
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    • pp.81-88
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    • 2003
  • Recently, pile foundations were constructed in rough or soft ground than ground of well condition thus it is important that prediction of ultimate bearing capacity and calculation of proper safety factor applied pile foundation design. This study were performed to dynamic loading tests for the thirty two piles at four different construction sites and selected pile at three site were performed to static loading tests and then compare with measured value and value of static and dynamic loading tests. The load-settlement curve form the dynamic loading tests by CAPWAP was very similar to the results obtained from the static load tests. Based on dynamic and static loading tests, the reliability of pile-driving formula were analyzed and then suggested with proper safety factor for prediction of allowable bearing capacity in this paper.

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.

해진시 개단무리말뚝의 거동에 관한 모형실험 연구 (An Experimental Study on the Behavior of Open-ended Pipe Piles Ggroup to the Simulated Seaquake)

  • 남문석;최용규;김재현
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 1999년도 봄 학술발표회 논문집
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    • pp.447-454
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    • 1999
  • The compressive capacity and the soil plugging resistance of single open-ended pipe pile were completely decreased in the previous study on the behavior of shorter single pile during simulated seaquake induced by the vertical component of earthquake. But the capacity of single open-ended pipe pile with greater penetration and the capacity of piles group with shorter penetration were expected to be stable after seaquake motion. In this study, first, 2-piles or 4-piles are driven into the calibration chamber included in saturated fine medium sand with several simulated penetrations, and the compressive load test for each piles group was performed. Then, about 95 % compressive load of the ultimate capacity was applied on the pile head during the simulated seaquake motion. Finally, In confirm the reduction of pile capacity during the simulated seaquake motion, the compressive load test for each single pile or piles group after seaquake motion was performed. During the simulated seaquake, the compressive capacity of open-ended pipe piles with greater penetration ( 〉about 27 m) was not degraded even in deep sea deeper than 220 m and soil plug within open-ended pipe pile installed in deep sea was stable after seaquake motion. Also, in the case of 2-piles or 4-pile groups, the compressive capacity after seaquake motion was not degraded at all regardless of pile penetration depth beneath seabed, sea water depth and seaquake frequency.

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지중응력의 변화를 고려한 조립토 다짐말뚝의 극한지지력 평가 (Evaluation of Ultimate Bearing Capacity on Granular Compaction Pile Considering Various Stresses in a Ground)

  • Kang, Yun;Yun, Ji-Yeon;Chang, Weon-Ho;Kim, Hong-Taek
    • 한국지반공학회논문집
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    • 제20권2호
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    • pp.115-124
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    • 2004
  • 조립토 다짐말뚝(granular compaction pile)공법은 비교적 강성이 크고 압축성이 작은 자갈, 쇄석 및 모래 등의 조립질 재료를 사용하여 연약한 지반에 말뚝을 조성하는 공법으로, 기초지반의 지지력 증가, 침하량 감소 및 압밀배수 촉진 등에 의한 지반개량 효과 뿐만 아니라, 사질토 지반에 적용시 지진에 의한 액상화 방지효과도 큰 공법으로 알려져 있으나 국내에서는 아직까지 널리 사용되지 않고 있다. 일반적으로 조립토 다짐말뚝은 Piled-raft system으로 시공되므로, 이 때 조립토 다짐말뚝의 극한지지력에 대한 평가는 팽창파괴 중심부의 깊이에 따라 달라지게 된다. 또한 조립토 다짐말뚝과 주변지반과의 하중분담에 대한 영향 및 지반내에서 조립토 다짐말뚝에 작용하는 구속응력의 변화를 적절하게 고려하여 조립토 다짐말뚝의 극한지지력이 결정되어야 한다. 본 연구에서는, 김 등(1998)에 의하여 연구되었면 조립토 다짐말뚝의 극한지지력 평가에 대한 해석기법을 토대로, 단일 말뚝에 대하여 상재하중의 크기, 재하면적의 크기 및 파괴깊이에 따른 수평구속응력의 변화를 고려하여 극한지지력을산정하기 위한 기법을 부시네스크 식을 이용하여 제안하였다. 또한 제안된 조립토 다짐말뚝의 극한지지력 평가 기법의 타당성을 실내모형 실험 및 수치해석 프로그램인 PFC-2D 프로그램을 이용한 수치해석 결과와의 비교, 분석을 통해 검증하였다.

개단 강관말뚝 내부 콘항타에 의한 지지력 증대효과 분석 (Analysis of Bearing Capacity Improvement Effect of Inner Cone Penetration Equiped Open-Ended Steel Pipe Pile)

  • 이준호;지수빈;이기철;김동욱
    • 한국지반신소재학회논문집
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    • 제16권2호
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    • pp.67-77
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    • 2017
  • 본 연구에서는 콘 장비를 강관말뚝 중공에 설치함에 따른 말뚝의 거동을 분석하기 위해 축소 모형실험을 진행하였다. 콘 장비를 항타하여 설치 할 경우 먼저 강관 내부에 유입되는 관내토의 높이를 수치상으로 확인 할 수 있으며, 이를 통해 플러깅을 예측하여 플러깅에 따른 말뚝의 거동을 분석 할 수 있다. 또한 물리적인 항타 에너지로 지반의 강성과 강도를 증가 시켜 지지력을 상승 시킬 것으로 기대된다. 강사 장치를 이용하여 상대밀도 90%의 지반을 조성하고 거칠기가 다른 두 강관말뚝을 항타높이를 200mm와 500mm로 나누어 근입깊이 600mm까지 설치한다. 그리고 콘 장비의 유무에 따라 총 8가지 케이스를 나누어 말뚝의 지지력을 분석하였다. 말뚝의 항타높이, 말뚝의 거칠기, 콘 장비의 유무에 따른 세 가지 변수 중 항타높이가 약 70%로 지지력에 미치는 영향이 가장 컸으며 다음으로 콘 장비의 유무가 약 40%, 말뚝의 거칠기가 약 21%로 나타났다.

가변선단재하판을 이용한 양방향말뚝재하시험의 치수 효과 (A Scale-Effect of O-Cell Pile Load Test with Variable End Plate)

  • 주용선;김낙경;김웅진;박종식
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2009년도 세계 도시지반공학 심포지엄
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    • pp.884-890
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    • 2009
  • The bi-directional pile load test with variable end plate overcomes the shortcoming of the Osterberg cell test. It is possible that the ultimate bearing capacity of the bi-direction can be known by using the loading of the end plate and two step procedures. The first step is to confirming end bearing capacity with variable end plate and the second step is similar to the conventional O-cell test. In the study, To calculate ultimate capacity of bi-directional load test using model with the pile with variable end plate O-cell, operated with end plate of 3 type on sand layer according to the relative density, loose, medium and dense conditions.

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파이프 골조온실의 원주형 콘크리트 기초의 인발저항력에 관한 연구 (A Study on the Uplift Capacity of Cylindrical Concrete Foundations for Pipe-Framed Greenhouse)

  • 윤용철;윤충섭;서원명;강만호
    • 한국농공학회지
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    • 제40권4호
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    • pp.109-119
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    • 1998
  • Recently pipe-framed greenhouses are widely constructed on domestic farm area. These greenhouses are extremely light-weighted structures and so are easily damaged under strong wind due to the lack of uplift resistance of foundation piles. This experiment was carried out by laboratory soil tank to investigate the displacement be haviors of cylindrical pile foundations according to the uplift loads. Tested soils were sampled from two different greenhouse areas. The treatment for each soil type are consisted of 3 different soil moisture conditions, 2 different soil depths, and 3 different soil compaction ratios. Each test was designed to be repeated 2 times and additional tests were carried out when needed. The results are summarized as follows : 1. When the soil moisture content are low and/or pile foundations are buried relatively shallow, ultimate uplift capacity of foundation soil was generated just after begining of uplift displacement. But under the high moisture conditions and/or deeply buried depth, ultimate up-lift capacity of foundation soil was generated before the begining of uplift displacement. 2. For the case of soil S$_1$, the ultimate uplift capacity of piles depending on moisture contents was found to be highest in optimum moisture condition and in the order of air dryed and saturated moisture contents. But for the case of soil S$_2$, the ultimate uplift capacity was found to be highest in optimum moisture condition and in the order of saturated and air dryed moisture contents. 3. Ultimate uplift capacities are varied depending on the pile foundation soil moisture conditions. Under the conditions of optimum soil moisture contents with 60cm soil depth, the ultimate uplift capacity of pile foundation in compaction ratio of 80%, 85%, and 90% for soil 51 are 76kg, 115kg, and 155kg, respectively, and for soil S$_2$are 36kg, 60kg, and 92kg, respectively. But considering that typical greenhouse uplift failure be occurred under saturnted soil moisture content which prevails during high wind storm accompanying heavy rain, pile foundation is required to be designed under the soil condition of saturated moisture content. 4. Approximated safe wind velosities estimated for soil sample S$_1$and S$_2$are 32.92m/s and 26.58m/s respectively under the optimum soil condition of 90% compaction ratio and optimum moisture content. But considering the uplift failure pattern under saturated moisture contents which are typical situations of high wind accompanying heavy rain, the safe wind velosities for soil sample S$_1$and S$_2$are not any higher than 20.33m/s and 22.69m/s respectively.

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