• 제목/요약/키워드: Weak rock tunnel

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터널 굴착시 암반예측시스템 개발(솔안터널) (Development of Rockmass Predictiom System during tunnel excavation(Sol-An Tunnel))

  • 김용일;조상국;양종화;김장수;이내용
    • 한국철도학회:학술대회논문집
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    • 한국철도학회 2003년도 춘계학술대회 논문집
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    • pp.53-67
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    • 2003
  • In this paper, a new systematic method will be introduced, in which a Rock-mass Prediction System(RPS) predicts the geological conditions and rock mass movements before tunnel excavation and the appropriate counter-measures are taken in the expected weak zones during tunnel construction. The Rock-mass Prediction System(RPS) consists of the LIM, a horizontal con drilling and a seismic exploration method (TSP/HSP). In the Rock-mass Prediction System(RPS), the seismic exploration method (TSP/HSP) gives information on the locations of the weak zones such as major faults and voids in wide-range, and the horizontal core drillings are utilized to find exact location and widths of the faults or voids near the weak zones which was predicted by the seismic exploration method (TSP/HSP). The LIM is used to find the hardness of the rock mass and small weak zones near the excavation face. The Rock-mass Prediction System(RPS) was successfully applied to the Sol-An Tunnel and the effectiveness of the system was verified.

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비균질/이방성 암반에서의 터널 거동 분석을 위한 수치해석적 연구 (Numerical Analysis on the Effect of Heterogeneous/Anisotropic Nature of Rock Masses on Displacement Behavior of Tunnel)

  • 백승한;김창용;김광염;홍성완;문현구
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2006년도 춘계 학술발표회 논문집
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    • pp.939-948
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    • 2006
  • The structural anisotropy and heterogeneity of rock mass, caused by discontinuities and weak zones, have a great influence on the deformation behavior of tunnel. Tunnel construction in these complex ground conditions is very difficult. No matter how excellent a geological investigation is, local uncertainties of rock mass conditions still remain. Under these uncertain circumstances, an accurate forecast of the ground conditions ahead of the advancing tunnel face is indispensable to safe and economic tunnel construction. This paper presents the effect of anisotropy and heterogeneity of the rock masses to be excavated by numerical analysis. The influences of distance from weak zone, the size or dimension, the different stiffness and the orientation of weak zones are analysedby 2-D and 3-D finite element analysis. By analysing these numerical results, the tunnel behavior due to excavation can be well understood and the prediction of rock mass condition ahead of tunnel face can be possible.

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연약암반에 굴착되는 NATM 터널의 변형거동과 보강설계 (Deformation Behavior and Reinforcement Design of a Tunnel Excavated in Weak Rock by the NATM)

  • 서영호;이정인
    • 터널과지하공간
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    • 제3권2호
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    • pp.132-141
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    • 1993
  • Laboratory and field tests were performed to find out the effectiveness of ground improvement by grouting for an urban subway tunnel that was excavated in weak rock by the NATM. Field measurements were carried out to monitor the behavior of rock mass around the tunnel and to ensure the validity of the current design of the distance form the measuring points to the tunnel face. The final converged displacement and the peroid were predicted using the gamma function. It was found that the ground improvement in terms of reduced permeability and increased stength in the self-supportability of the excavation face enabled the NATM applied in poor gorund. As the result of applying the gamma function to the predicting of displacement, the final displacement including the preceding one and the converged period could be approximately predicted at the early excavation stage.

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터널 굴착시 암반예측시스템 적용사례 (솔안터널) (Application of Rockmass Prediction System during tunnel excavation(Sol-An Tunnel))

  • 김용일;조상국;양종화;김장수;이내용
    • 한국암반공학회:학술대회논문집
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    • 한국암반공학회 2003년도 춘계학술발표회 논문집
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    • pp.13-30
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    • 2003
  • 본 고에서는 터널 굴착전 대상지반의 지질상태 및 암반거동을 암반예측시스템(RPS)을 통해 사전에 예측하고, 시공중 취약구간에 대해 적절한 대응을 하는 새로운 종합적인 방법을 소개하고자 한다. 암반예측시스템(RPS)은 선진보링(LIM), 선진수평시추, 탄성파탐사(TSP/HSP)로 구성되어 있다. 암반예측시스템에서 탄성파탐사(TSP/HSP)는 주요 단층과 공동등 연약대의 위치에 대한 개략적인 정보를 제공하며, 선진수평시추는 탄성파탐사(TSP/HSP)에 의해 예측된 연약대 전방에서 단층 또는 공동의 위치와 폭을 확인하는 데 활용된다. 선진보링(LIM)은 암반의 연경도와 굴착면 부근의 작은 연약대를 발견하는 데 활용된다. 암반예측시스템(RPS)은 영동선 철도현장의 솔안터널에 성공적으로 적용되어 그 효용성이 입증되었다.

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연암터널의 막장 및 무지보 구간의 거동형태에 관한 연구 (A Study on the Behaviour Modes of the Face and Unsupported Span for Weak Rock Tunnel)

  • 이영주;김창용;김광염
    • 터널과지하공간
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    • 제17권1호
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    • pp.9-16
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    • 2007
  • 굴진장이 터널의 안정성 및 시공비에 미치는 영향에 대해서는 많은 연구자와 기술자들이 잘 알고 있지만, 아직 굴진장 결정에 대해서 일관된 절차가 수립되지는 못한 실정이다. 본 연구에서는 굴진장을 고려한 연암터널의 막장과 무지보 구간의 거동형태를 실내모형실험, PFC3D 및 FDM 해석을 통하여 조사하였다. 총 다섯 개의 거동형태를 정의하였고, 막장 안전율과 설계 도표를 통해 거동형태를 정량적으로 판단할 수 있도록 하였다. 비록 본 연구에서 제안한 방법이 몇몇 제한을 갖지만, 굴진장과 굴착의 최적화를 위한 유용한 정보를 제공할 수 있을 것으로 사료된다.

대심도 암반의 터널 설계를 위한 지반 조사와 특성화 (Ground Investigation and Characterization for Deep Tunnel Design)

  • 윤운상;최재원;박정훈;송국환;김영근
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2009년도 세계 도시지반공학 심포지엄
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    • pp.584-590
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    • 2009
  • One of the critical design problems involved in deep tunnelling in brittle rock, is the creation of surface spalling damage and breakouts. If weak fault zone is developed in deep tunnel, squeezing problem is added to the problems. According to the results of ground investigation in the study area, hard granitic rockmass and distinguished high angle fault zone are distributed on the tunnel level over 400m depth. To analyse the probability of brittle failure and squeezing, ground characterization with special lab. and field test were carried out. By the results, probability of brittle failures like spalling and rock burst is very low. But squeezing may be probable, if weak fault zone observed surface and drill core is extended to designed tunnel level.

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터널 거동에 대한 암반 연약대의 영향 평가를 위한 수치해석적 연구 (Numerical Analysis on the Effect of Heterogeneous Nature of Rock Masses on Tunnel Behavior)

  • 백승한;김창용;김광염;홍성완;문현구
    • 한국터널지하공간학회 논문집
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    • 제8권2호
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    • pp.115-128
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    • 2006
  • 불연속면 또는 연약대로 인해 야기되는 암반의 구조적 이방성과 비균질성은 터널의 변형 거동에 큰 영향을 미친다. 아무리 우수한 지반조사가 이루어진다 하더라도, 지역적 불확실성은 여전히 남아 있으므로 복잡한 지반 조건에서의 터널 굴착은 매우 어려운 작업이다. 이러한 불확실한 환경에서 터널 막장 전방의 지반 상태를 정확히 예측하는 것은 안전하고 경제적인 터널 건설에 필요불가결하다 할 수 있다. 따라서 본 논문은 3차원 수치해석을 통하여 암반의 이방성 및 비균질성의 영향을 평가하였다. 즉 터널 굴착으로 인해 야기되는 지반 거동을 분석하고 이에 대한 연약대의 폭과 강성 그리고 방향성의 영향을 정량적으로 평가하였다.

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터널 건설 예정지구에서의 전기비저항 탐사와 전자탐사의 적용을 통한 연약대 탐지에 대한 사례 연구 (A case histories on the detection of weak zone using electrical resistivity and EM surveys in planned tunnel construction site)

  • 권형석;송윤호;이명종;정호준;오세영;김기석
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2002년도 봄 학술발표회 논문집
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    • pp.63-70
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    • 2002
  • In tunnel construction, the information on the rock quality and the location of fault or fracture are crucial for economical design of support pattern and for safe construction of the tunnel. The grade of rock is commonly estimated through the observation with the naked eye of recovered cores in drilling or from physical parameters obtained by their laboratory test. Since drilling cost is quite expensive and terrains of planned sites for tunnel construction are rough in many cases, however, only limited information could be provided by core drilling Electrical resistivity and EM surveys may be a clue to get over this difficulty. Thus we have investigated electrical resistivity and EM field data providing regional Information of the rock Quality and delineating fault and fracture over a rough terrain. In this paper, we present some case histories using electrical resistivity and EM survey for the site investigation of tunnel construction. Through electrical resistivity and EM survey, the range and depth of coal seam was clearly estimated, cavities were detected in limestone area, and weak zones such as joint, fault and fracture have been delineated.

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성주 터널에 사용될 Rock Bolt의 이론적인 설계 기준에 관하여 (Basic Study for Theoretical Design of Rock Blots at Seong Ju Tunnel)

  • 강선덕
    • 화약ㆍ발파
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    • 제16권2호
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    • pp.23-33
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    • 1998
  • 본 연구는 현재 시공중에 있는 성주터널에 사용될 Rock Bolt의 설계 기준을 작성하는데 목적을 두었다. 이 성주터널의 개설은 본 구역의 암질이 연약하기 때문에 NATM(New Austrian Tunnelling method)으로 시공하는 것으로 가정하였으며 본 공법에서 소약되는 Rock Blot의 길이와 간격 등의 설계 기준을 작성하엿다. 그 결과 다음과 같은 결론을 얻었다. 1) 터널 주어암석을 조립사암, 상립사암, 사귀하암 그리고 silty세일은 보통암이고 흑색세이로가 그레이와케(Greywacke) 그리고 설암으로 확인되었다. 2) 본 터널에 사용할 Rock Blot의 길이를 3~4m의 것을 활용할때에 Blot의 간격은 사암에는 최소 1.3m에서 최대 1.8로, 혈암에는 최소 1.3m에서 최대 2.0m이다. 그리고, 그레이와케(Grey-wake)의 경우는 공히 1.5m로 설계되었다.

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The contact loads inversion between surrounding rock and primary support based on dynamic deformation curve of a deep-buried tunnel with flexible primary support in consideration

  • Jian Zhou;Yunliang Cui;Xinan Yang;Mingjie Ma;Luheng Li
    • Geomechanics and Engineering
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    • 제36권6호
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    • pp.575-587
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    • 2024
  • The contact pressure between the surrounding rock and the support is an important indicator of the surrounding rock pressure. There has been a bottleneck in the prediction of contact loads between surrounding rock and primary support in deep-buried mountain tunnels. The main reason is that a reliable method wasn't existed to quantify the contact loads. This study had been taken into account the flexible support role of the primary support, and the fitting curve of surrounding rock deformation for dynamic tunnel construction was proposed. New formulas for the calculation of contact loads between surrounding rock and primary support were obtained by inversion. Comparative analysis of the calculation results with numerical simulation verified the reliability of the calculation method in this study. It can be seen from the analyses that the contact load between surrounding rock and primary support increases, remains unchanged and decreases during acceleration, uniform velocity and deceleration, respectively, and the deformation of the surrounding rock in the acceleration and deceleration stages cannot completely converted into contact loads. The contact loads between surrounding rock and primary support of medium-strength and weak surrounding rock tunnels are generally within 150 kPa and 1 MPa, respectively. For tunnels with weak surrounding rock, advanced support can be installed to reduce the unique release coefficient λ0 and the value of the constant D, with the purpose of reducing the contact loads between surrounding rock and primary support. Changes in support parameters have a small effect on the contact loads between surrounding rock and primary support, but increase or decrease the safety factor, resulting in a waste of resources or a situation that threatens the safety of the support. The results of this research provide guidance for the prediction of contact loads between surrounding rock and primary support for dynamic tunnel construction.