• 제목/요약/키워드: retaining wall method

검색결과 325건 처리시간 0.028초

쏘일네일링 공법을 적용한 영구 지하굴착 벽체의 설계사례 연구 (Design Case Study of Permanent Excavation Wall Using Soil Nailing System)

  • 박시삼;이제만;유찬호;김홍택
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2005년도 지반공학 공동 학술발표회
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    • pp.84-91
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    • 2005
  • In case of soil nailing system, there have been many attempts to expand into slope and temporary earth retaining system stabilization method since the first ground excavation earth retaining system construction in 1993. Recently, jointing wall, underground wall of buildings and excavation earth retaining wall, construction were increasingly applied for effective utilization of the limited underground space and land application maximized. However, the application of joining wall into retaining wall or building by temporary soil nailing system and design of permanent wall were performed by using Rankine earth pressure theory without considering the distribution of earth pressure in the soil nailing. In this study was performed to introduce the design case by 'Two-Body Translation mechanism (TBTM)' to be able to consider distribution of earth pressure in the soil nailing when designing the permanent jointing wall using soil nailing system for effective utilization of ground space. Also, this study attempts to evaluate the earth pressure change, decreasing effect of wall displacement and increasing effect of stability when advanced soil nailing system is constructed using $FLAC^{2D}$ ${\nu}er.$ 3.30 program and 'Two-Body Translation mechanism'.

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개선된 탄소성 해석을 이용한 버팀지지 흙막이벽의 거동비교 (Comparison of Displacement of the Braced Retaining Wall by Developed Elasto-Plastic Analysis)

  • 신진환;김동신
    • 한국안전학회지
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    • 제19권2호
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    • pp.112-118
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    • 2004
  • Recently, when being constructed the large structures, the deep excavations have performed to utilize the underground space. As the ground excavation is deeper, the damage of the adjacent structure and the ground is frequently occurred. the Analysis of the retaining structures is necessary to safety of the excavation works. There are many methods such as elasto-plastic theory, FEM, and FDM to analyze the displacement of the retaining structure. In this thesis, GEBA-1 program by the Nakamura-Nakajawa elasto-plastic method was developed. The lateral displacement of the wall was analyzed by the developed program GEBA-1, SUNEX, and EXCAD, and compared with the measured displacement bye the Inclinometer. The monitored fields were three excavation work site in S-I, S-II, and S-III area. Excavation method of each site is braced retaining wall using H-pile. Excavation depth is 14m, 14m, and 8.2m.

Preliminary numerical analysis of controllable prestressed wale system for deep excavation

  • Lee, Chang Il;Kim, Eun Kyum;Park, Jong Sik;Lee, Yong-Joo
    • Geomechanics and Engineering
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    • 제15권5호
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    • pp.1061-1070
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    • 2018
  • The main purpose of retaining wall methods for deep excavation is to keep the construction site safe from the earth pressure acting on the backfill during the construction period. Currently used retaining wall methods include the common strut method, anchor method, slurry wall method, and raker method. However, these methods have drawbacks such as reduced workspace and intrusion into private property, and thus, efforts are being made to improve them. The most advanced retaining wall method is the prestressed wale system, so far, in which a load corresponding to the earth pressure is applied to the wale by using the tension of a prestressed (PS) strand wire. This system affords advantages such as providing sufficient workspace by lengthening the strut interval and minimizing intrusion into private properties adjacent to the site. However, this system cannot control the tension of the PS strand wire, and thus, it cannot actively cope with changes in the earth pressure due to excavation. This study conducts a preliminary numerical analysis of the field applicability of the controllable prestressed wale system (CPWS) which can adjust the tension of the PS strand wire. For the analysis, back analysis was conducted through two-dimensional (2D) and three-dimensional (3D) numerical analyses based on the field measurement data of the typical strut method, and then, the field applicability of CPWS was examined by comparing the lateral deflection of the wall and adjacent ground surface settlements under the same conditions. In addition, the displacement and settlement of the wall were predicted through numerical analysis while the prestress force of CPWS was varied, and the structural stability was analysed through load tests on model specimens.

지반굴착을 위한 급속시공 방안 연구 (A Study on the Rapid Construction Method for Ground Excavation)

  • 심재욱;손성곤;안형준;김인호
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2008년도 추계 학술발표회
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    • pp.1251-1258
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    • 2008
  • The purpose of this research is to introduce the new temporary earth retaining wall system using landslide stabilizing piles. This system is a self-supported retaining wall(SSR) without installing supports such as tiebacks, struts and rakers. The SSR is a kind of gravity structures consisting of twin parallel lines of piles driven below dredge level, tied together at head of soldier piles and landslide stabilizing piles by beams. There are three types of excavation wall structures: standard method for medium retained heights(<8.0m), internal excavation method and slope excavation method for deep-excavation applications(>8.0m). In the present study, the measured data from seven different sites which the SSR was used for excavation were collected and analyzed to investigate the characteristic behavior lateral wall movements associated with urban excavations in Korea.

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Computer modeling of crack propagation in concrete retaining walls: A case study

  • Azarafza, Mehdi;Feizi-Derakhshi, Mohammad-Reza;Azarafza, Mohammad
    • Computers and Concrete
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    • 제19권5호
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    • pp.509-514
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    • 2017
  • Concrete retaining walls are the most common types of geotechnical structures for controlling instable slopes resulting from lateral pressure. In analytical stability, calculation of the concrete retaining walls is regarded as a rigid mass when its safety is required. When cracks in these structures are created, the stability may be enforced and causes to defeat. Therefore, identification, creation and propagation of cracks are among the important steps in control of lacks and stabilization. Using the numerical methods for simulation of crack propagation in concrete retaining walls bodies are among the new aspects of geotechnical analysis. Among the considered analytical methods in geotechnical appraisal, the boundary element method (BEM) for simulation of crack propagation in concrete retaining walls is very convenient. Considered concrete retaining wall of this paper is Pars Power Plant structured in south side in Assalouyeh, SW of Iran. This wall's type is RW6 with 11 m height and 440 m length and endurance of refinery construction lateral forces. To evaluate displacement and stress distributions (${\sigma}_{1,max}/{\sigma}_{3,min}$), the surrounding, especially in tip and its opening crack BEM, is considered an appropriate method. By considering the result of this study, with accurate simulation of crack propagation, it is possible to determine the final status of progressive failure in concrete retaining walls and anticipate the suitable stabilization method.

영구앵커와 연직 프리캐스트패널을 사용한 절토사면 친환경옹벽공법의 적용사례 (Application for Environment-friendly Retaining Wall Method Composed with Permanent Ground Anchor and Vertical Precast Panel in Cutting Slope Area)

  • 남홍기;정홍섭
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2010년도 추계 학술발표회
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    • pp.87-96
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    • 2010
  • PAP method is a combined measures which consist a anchored retaining wall method with permanent ground anchors and vertical precast concrete panels, step by step on the slope surface. And soil is back filled between slope and vertical precast panels. Therefore, this method is more effective than any other ground anchor reinforcing methods of slope stability, for example cross type concrete block ground anchor or buttress concrete block ground anchor method. Because of increasing effective anchor force and green tree planting.

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탄소성 해석프로그램에 의한 버팀지지 흙막이벽의 변위 비교 (Displacement Comparison of a Braced Retaining Wall by Elasto-Plastic Analysis Program)

  • 신방웅;김상수;오세욱;김동신
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2000년도 봄 학술발표회 논문집
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    • pp.395-402
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    • 2000
  • Recently, the deep excavations have been peformed to utilize the under ground space. As the ground excavation is deeper, the damage of the adjacent structure and the ground occurs frequently. The analysis of the retaining structures is necessary to the safety of the excavation works. There are many methods such as elasto-plastic, FEM, and FDM to analyze the displacement of the retaining structure. The elasto-plastic method is generally used in practice. In this thesis, GEBA-1 program by the Nakamura-Nakajawa elasto-plastic method was developed. The program for Windows was used the Visual Basic 6.0, and the Main of the program consists of three subroutines, SUB1, SUB2, and SUB3. The lateral displacement of the wall was analyzed by the developed program GEBA-1, SUNEX, and EXCAD, and compared with the measured displacement by the Inclinometer(at three excavation work sites). The excavation method of each site is braced retaining wall using H-pile. Each excavation depth is 14m, 14m, or 8.2m. The results of the analyses are the followings ① In the multi-layer soil, the lateral displacement by the GEBA-1 and EXCAD which is considering the distribution of the strut load is equal to the measured displacement. Elasto-plasto programs can't consider the change of the ground water in clay. Therefore, the analysis displacement was expected only 20% of the measured wall displacement. ③ At the final excavation step, the maximum lateral displacement of analysis and field occurred 7∼18m at the 85∼92% of the excavation depth. ④ The maximum lateral displacement in clay, as 50mm, occurred on the ground surface.

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강재 요소를 적용한 조립식 흙막이 벽체에 관한 연구 (Application of Prefabricated Retaining Walls with Steel Lagging)

  • 홍종우;최재순
    • 대한토목학회논문집
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    • 제35권6호
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    • pp.1277-1285
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    • 2015
  • H-pile과 목재 토류판을 사용하는 흙막이 공법은 오랜 기간 굴착공사에서 사용되어 온 공법이지만 H-pile 사이의 간격이 일정치 않아 규격화된 목재를 절단하거나 덧대기 공정이 추가되는 문제점이 있다. 또한, 시방규정상 3회 재사용을 위한 목재 회수시 안전사고의 위험이 따르게 되며 이러한 이유로 목재를 회수치 않고 지중에 매몰하여 여러 차례 방송매체의 지적을 받은 바 있다. 이 연구에서는 이상의 문제점을 보완하기 위하여 기존의 목재 토류판을 대신하여 강재 요소를 적용하는 방안을 제시하였다. 강재 흙막이 구조체는 자유 확폭과 개별 흙막이 구조체를 연결하는 커넥터를 통해 시공 편의성 및 재활용을 위한 회수가 가능한 것이 특징이다. 또한, 해체 시 커넥터를 통한 구조체간의 연결성으로 지중인력투입없이 해체가 가능하다. 이러한 흙막이 구조체의 강도특성을 분석하기 위해 UTM장비를 사용하여 휨 강성시험, 반복 사용의 능력을 확인하기위한 피로 강도시험, 그리고, 흙막이 구조체의 회수 시 연결부 구조체의 성능을 확인하기위한 인장 강도시험을 수행하였다. 또한, 장점으로 부각된 내용이 현장에서 실제 가능한지 여부를 확인하기 위한 현장시험과 다양한 지반조건에 따른 수치해석을 통해 현장 적용성을 평가하였다. 연구결과, 구조적 특성뿐만 아니라 설치 및 해체시의 시공 편의성이 매우 탁월한 것으로 나타났으며 향후 구조체의 재사용과 함께 시공 경제성 증진에도 크게 기여할 것으로 판단된다. 특히, 다단굴착시 굴착배면에 흙막이 구조체가 밀착되어 설치가 가능한 점은 기존 공법에서 지적되어 온 배면지반의 뒷채움 불량이 발생할 여지가 없어 시공 및 시공 후 시설물의 안전성 증진에 크게 기여할 수 있을 것으로 판단된다.

현장실험을 통한 식생토낭 보강토벽의 거동특성에 관한 연구 (Behavior of Full Scaled Geobag Retaining Wall Structure by Field Pilot Test)

  • 신은철;박경원;신희수;함경원
    • 한국지반신소재학회논문집
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    • 제16권4호
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    • pp.21-31
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    • 2017
  • 식생토낭 공법은 토목섬유 콘테이너 공법의 일종으로 옹벽건설시 시공환경에 따른 영향을 최소화할 수 있으며, 자연친화적 공법이다. 본 연구에서는 식생토낭 보강토벽 시공방법을 식생토낭 비다짐 옹벽, 식생토낭 다짐 옹벽, 중력및 일반쌓기 혼용 옹벽, 게비온과 일반쌓기 혼용 옹벽 등 4가지 시공방법 대하여 계측기를 매설하고, 식생토낭 보강토벽의 거동특성을 평가하였다. 시공계측 결과, 식생토낭 일반쌓기 비다짐 구간에서의 변위가 게비온과 식생토낭 혼용구간 보다 최대 30%이상 발생하였다. 또한, 뒤채움부 무보강 2m이상 식생토낭 보강토벽은 변위에 대해 불안정한 것으로 평가되었다. 한편, 토압의 분포는 시공직후 모든 구간 Rankine 및 Coulomb의 주동토압 이내에 분포하는 것으로 나타났다. 그러나 집중강우 이후 일반쌓기 구간은 토압의 증가폭이 크게 나타났으며, 게비온과 일반쌓기 혼용구간이 일반쌓기 구간과 비교하여 보다 안정한 것으로 평가되었다.

토사지반에 설치된 역 T형 옹벽의 저판형상이 활동거동에 미치는 영향 (Effects of Base Shape of Cantilever Retaining Wall in Soil Foundation on the Sliding Behavior)

  • 유남재;이명욱;김영길;이종호
    • 산업기술연구
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    • 제19권
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    • pp.135-145
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    • 1999
  • This thesis is to investigate the sliding behavior of cantilever retaining wall by using the commercially available program of FLAC to simulate its behavior numerically. Cantilever retaining walls with flat base, sloped base and base with shear key, uniform surcharges being applied on the surface of backfill, were investigated to figure out appropriate location of shear key beneath the base of wall and, thus, its applicability to field condition was assessed by comparing the analyzed results to each other. On the other hand, previously performed centrifuge model test results (Eum, 1996) were analyzed numerically with FLAC to compare test results with respect to characteristics of load-settlement of surcharges and load-lateral movement of wall. Based on the failure mechanism observed during centrifuge tests, limit equilibrium method of finding the ultimate load inducing the sliding failure of wall was used to compare with values of the ultimate load obtained from conventional method of limit equilibrium method. Therefore, appropriate location of shear key was determined to mobilize the maximum resistance against sliding failure of wall.

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