• 제목/요약/키워드: piled bridge abutment

검색결과 9건 처리시간 0.029초

교대말뚝기초의 측방이동 판정기준 분석 (Design Guidelines of Piled Bridge Abutment subjected to Lateral Soil Movements)

  • 정상섬;이진형;서동희;김유석;장범수
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2002년도 봄 학술발표회 논문집
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    • pp.381-388
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    • 2002
  • A series of centrifuge model tests were performed to investigate the behavior of piled bridge abutment subjected to lateral soil movements induced by the construction of approach embankment. In these tests, both the depth of soft clay and the rate of embankment construction are chosen as key parameters to examine the effects on lateral soil movements. The depth of soft clay layer varies from 5.2 m to 11.6 m, and the rate of embankment construction has two types of staged construction(1m/30days, 1m/15days) and instant construction. It is shown that, the distribution of lateral flow induced by stage embankment construction has a trapezoidal distribution. And practical guidelines to check the possibility of some lateral movement of piled abutment were investigated. The validity of the proposed guidelines by centrifuge test was compared with the observed performance by lateral movement index, F(Japan Highway Public Corporation) and modified I index(Korea Highway Corporation). Based on the results obtained, the critical values of F and modified I, as a practical guidelines, are proposed to 0.03 and 2.0, respectively.

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경사지반에 위치한 교대기초의 원심모델링 (Centrifuge Modelling of Bridge Abutment Foundation on the Sloped Ground)

  • 유남재;전상현;홍영길
    • 산업기술연구
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    • 제27권B호
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    • pp.209-214
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    • 2007
  • This paper is the research result about centrifuge model experiments of investigating the behavior of bridge abutment on the sloped ground. Ground condition of the studied site was the bridge abutment with pile foundation adjacent to the slope. The pile foundations was supported on the soft rocks covered with the embankment. Evaluating the behavior of such a complicate ground and structure conditions was not easy so that the centrifuge modelling was performed to find the overall behavior of them. Layout of centrifuge model experiment was simplified to simulate easily the actual behavior of very complicate site condition. Construction process in field such as ground excavation for footing foundation, installation of piles, placement of footing and bridge abutment, backfilling and surcharge loading eas duplicated in the centrifuge model experiment. Consequently, the stability of the piled bridge abutment adjacent to the slope of embankment was evaluated throughout centrifuge modelling.

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연약지반 위에 시공되는 교대의 측방유동에 대한 안정성 평가 (Evaluation of Stability about Lateral Soil Movement of Bridge Abutment Constructed on Soft Ground)

  • 유남재;김동건;전상현
    • 산업기술연구
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    • 제30권B호
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    • pp.25-32
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    • 2010
  • In this paper stability about lateral soil movement of bridge abutment constructed on the soft ground, reinforced with the sand compaction pile (SCP) and the preconsolidaton methods, was evaluated by using the centrifuge testing facility which stress conditions in field could be reconstructed in the laboratory. The layouts of model such as ground condition, sand compaction piles and abutment was determined on the basis of similitude law with the reduced scale of 1/200. Construction sequences of installing SCP, preparing reclaimed ground, preconsolidating ground and building the piled bridge abutment were reconstructed during centrifuge modelling and measurements of movement were followed in each sequence. From analyzing the results of measuring movements of the model abutment and the ground, measured lateral movement of model abutment was found to be within the allowable value so that stability of abutment against lateral sliding was secured.

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교대말뚝기초의 측방유동에 관한 원심모형실험 (Centrifuge Model Experiments for Lateral Soil Movements of Piled Bridge Abutments.)

  • 최동혁;정길수;박병수;유남재
    • 산업기술연구
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    • 제25권B호
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    • pp.63-71
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    • 2005
  • This paper is an experimental result of investigating lateral soil movements at piled bridge abutments by using the centrifuge model facility. Three different centrifuge model experiments, changing the methods of ground improvement at bridge abutment on the soft clayey soil (no improvement, preconsolidation and plastic board drains (PBD), sand compaction pile (SCP) + PBD), were carried out to figure out which method is the most appropriate for resisting against the lateral soil movements. In the centrifuge modelling, construction process in field was reconstructed as close as possible. Displacements of abutment model, ground movement, vertical earth pressure, cone resistance after soil improvement and distribution of water content were monitored during and after centrifuge model tests. As results of centrifuge model experiments, preconsolidation method with PBD was found to be the most effective against the lateral soil movement by analyzing results about displacements of abutment model, ground movement and cone resistance. Increase of shear strength by preconsolidation method resulted in increasing the resistance against lateral soil movement effectively although SCP could mobilize the resistance against lateral soil movement. It was also found that installment with PBD beneath the backfill of bridge abutment induced effective drainage of excess pore water pressure during the consolidation by embanking at the back of the abutment and resulted in increasing the shear strength of clay soil foundation and eventually increasing the resistance of lateral soil movement against piles of bridge abutment.

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측방유동을 받는 교대말뚝기초의 거동분석 (II) - 측방유동 판정기준 - (The Behavior of Piled Bridge Abutments Subjected to Lateral Soil Movements - Design Guidelines -)

  • 이진형;서정주;정상섬;장범수
    • 한국지반공학회논문집
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    • 제19권1호
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    • pp.21-29
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    • 2003
  • 본 논문에서는 원심모형실험 결과와 국내.외 현장자료를 바탕으로 연약지반에 시공된 교대말뚝기초의 측방이동 발생 가능성을 판정할 수 있는 기준을 비교.검토하였다. 이를 위해 교대말뚝기초의 측방이동에 가장 중요한 영향을 미치는 변수로서 지반조건과 성토지반 시공속도를 선정하여 총 6 종류의 원심모형실험을 실시하였다. 본 실험에서는 점성토 지반의 과잉간극수압과 지표 침하량, 교대말뚝기초의 수평변위와 휨변형, 교대말뚝기초에 작용하는 측방유동압을 성토하중 재하단계와 성토 후 80% 이상 압밀이 진행된 단계에서 측정하였으며 그 결과를 토대로 교대말뚝기초의 측방이동 판정기준을 분석하였다. 또한 원심모형실험 결과와 더불어 국내.외 현장자료를 조사 및 수집하여 교대말뚝기초의 측방이동 판정기준으로 일본 도로공단에서 제시한 측방이동지수(F)와 한국도로공사에서 제시한 수정 I지수($M_I$)에 대하여 그 타당성을 검토하였다. 그 결과 교대말뚝기초의 측방이동 판정기준으로 측방이동지수(F)는 0.03, 수정 I지수($M_I$)는 2.00으로 한계값을 수정하는 것이 타당한 것으로 나타났다.

측방유동을 받는 교대말뚝기초의 거동분석 (I) - 원심모형실험 연구 - (The Behavior of Piled Bridge Abutments Subjected to Lateral Soil Movements - A Study on the Centrifuge Model Tests -)

  • 서정주;서동희;정상섬;김유석
    • 한국지반공학회논문집
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    • 제19권1호
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    • pp.5-19
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    • 2003
  • 본 연구에서는 인접 성토로 인하여 측방유동이 발생하는 연약한 점성토 지반에 시공된 교대말뚝기초를 원심모형실험으로 재현하여 지반조건과 성토지반의 시공속도에 따른 교대말뚝기초의 거동특성을 분석하였다. 이를 위해 지반조건과 성토지반 시공속도를 교대말뚝기초의 측방유동에 가장 중요한 영향을 미치는 변수로 선정하여 총 6 종류의 원심모형실험을 실시하였다. 본 실험에서 지반조건은 점성토 지반의 두께와 지층단면에 따라 세 가지 종류로 구분하였으며 성토하중 재하조건은 한계성토고까지 단계적으로 재하하는 방법(1m/30일, 1m/15일)과 한계성토고에 해당하는 하중을 급속재하 하는 방법으로 나누어 고려하였다. 그 결과 동일한 조건하에서 측방유동을 받는 교대말뚝기초의 비배수 단기거동과 장기거동을 파악하기 위해 성토하중 재하단계와 성토 후 압밀이 약 80% 진행된 단계에서의 지반-말뚝 거동특성을 비교ㆍ 분석하였다. 본 연구 결과, 편차 성토하중으로 인해 연약지반상 교대말뚝기초에 발생하는 측방유동압은 단계별 성토하중 재하시 사다리꼴 분포형태와 유사하였으며 이때 발생하는 최대 측방유동압($P_{max}$)과 편차 성토하중($\gamma$ H)의 비($\alpha$)는 비배수 상태인 단기거동시에는 0.75, 압밀이 약 80% 진행된 장기거동시에는 0.35 정도로 나타남을 알 수 있었다.

교대하부 도로확장에 적용된 쏘일네일 벽체의 해석 (Analysis of Soil Bailed Wall under Piled Bridge Abutment)

  • 임유진
    • 공학논문집
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    • 제6권1호
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    • pp.83-96
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    • 2004
  • 강판파일로 지지되고 있는 미니 교대하부에, 압성토의 제거에 따른 교대의 안정성을 확보하기 위한 방법으로서 쏘일네일링 공법을 채택하였다. 네일벽체에 각종 계측기를 매설하여 벽체의 거동을 추적하였다. 또한 3차원 유한요소해석기법을 이용하여 쏘일네일 벽체와 기존 구조물사이의 상호영향과 관련된 벽체의 거동을 분석하였다. 압성토의 순차적 제거와 네일타설 등의 전 축조 시퀀스를 모델링 할 수 있는 기법을 개발하였으며 개발된 시뮬레이션 기법의 타당성을 검증하기 위해 현장에 축조된 실물 계측데이터를 이용하여 보정하였고, 압성토의 제거와 네일타설이 기존 파일의 축하중 및 휨모멘트에 미치는 영향과 네일 인장력의 변화와의 상관관계 등, 설계시 고려되어야 할 몇 가지 주요한 사항에 대한 해석결과를 구할 수 있었다.

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Geotechnical Engineering Progress with the Incheon Bridge Project

  • Cho, Sung-Min
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2009년도 세계 도시지반공학 심포지엄
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    • pp.133-144
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    • 2009
  • Incheon Bridge, 18.4 km long sea-crossing bridge, will be opened to the traffic in October 2009 and this will be the new landmark of the gearing up north-east Asia as well as the largest & longest bridge of Korea. Incheon Bridge is the integrated set of several special featured bridges including a magnificent cable-stayed girder bridge which has a main span of 800 m width to cross the navigation channel in and out of the Port of Incheon. Incheon Bridge is making an epoch of long-span bridge designs thanks to the fully application of the AASHTO LRFD (load & resistance factor design) to both the superstructures and the substructures. A state-of-the-art of the geotechnologies which were applied to the Incheon Bridge construction project is introduced. The most Large-diameter drilled shafts were penetrated into the bedrock to support the colossal superstructures. The bearing capacity and deformational characteristics of the foundations were verified through the world's largest static pile load test. 8 full-scale pilot piles were tested in both offshore site and onshore area prior to the commencement of constructions. Compressible load beyond 30,000 tonf pressed a single 3 m diameter foundation pile by means of bi-directional loading method including the Osterberg cell techniques. Detailed site investigation to characterize the subsurface properties had been carried out. Geotextile tubes, tied sheet pile walls, and trestles were utilized to overcome the very large tidal difference between ebb and flow at the foreshore site. 44 circular-cell type dolphins surround the piers near the navigation channel to protect the bridge against the collision with aberrant vessels. Each dolphin structure consists of the flat sheet piled wall and infilled aggregates to absorb the collision impact. Geo-centrifugal tests were performed to evaluate the behavior of the dolphin in the seabed and to verify the numerical model for the design. Rip-rap embankments on the seabed are expected to prevent the scouring of the foundation. Prefabricated vertical drains, sand compaction piles, deep cement mixings, horizontal natural-fiber drains, and other subsidiary methods were used to improve the soft ground for the site of abutments, toll plazas, and access roads. Light-weight backfill using EPS blocks helps to reduce the earth pressure behind the abutment on the soft ground. Some kinds of reinforced earth like as MSE using geosynthetics were utilized for the ring wall of the abutment. Soil steel bridges made of corrugated steel plates and engineered backfills were constructed for the open-cut tunnel and the culvert. Diverse experiences of advanced designs and constructions from the Incheon Bridge project have been propagated by relevant engineers and it is strongly expected that significant achievements in geotechnical engineering through this project will contribute to the national development of the longspan bridge technologies remarkably.

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