• 제목/요약/키워드: Stability of a tunnel face

검색결과 128건 처리시간 0.022초

실트질 지반에 굴착된 NATM 터널의 시공사례 연구 (A Case Study on Construction of a Tunnel Excavated in Silty Ground by the NATM)

  • 박종호;윤효석;박종인;이원규
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 1999년도 가을 학술발표회 논문집
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    • pp.139-146
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    • 1999
  • Geological and geotechnical surveys, in general, should precede the excavation to ensure the stability of the tunnel md should be followed up according to the various geological condition during the excavation. However actually the standard support patterns which were decided during the design phases used be insisted for the whole excavation phases in spite of the various geological conditions. When $\bigcirc$$\bigcirc$ tunnel was excavated up to 25m long, the severe displacement was generated in the Portal area of $\bigcirc$$\bigcirc$ tunnel and the tunnel face was pally collapsed. Therefore, this paper present the case study on construction associated with the Umbrella Arch Method used in silty ground by the NATM.

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경암지반 NATM 터널에서 암반분류 및 계측에 의한 최적지보공 선정에 관한 연구 (Selection of Optimum Support based on Rock Mass Classification and Monitoring Results at NATM Tunnel in Hard Rock)

  • 김영근;장정범;정한중
    • 터널과지하공간
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    • 제6권3호
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    • pp.197-208
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    • 1996
  • Due to the constraints in pre site-investigation for tunnel, it is essential to redesign the support structures suitable for rock mass conditions such as rock strength, ground water and discontinuity conditions for safe tunnel construction. For the selection of optimum support, it is very important to carry out the rock mass classification and in-situ measurement in tunnelling. In this paper, in a mountain tunnel designed by NATM in hard rock, the selectable system for optimum support has been studied. The tunnel is situated at Chun-an in Kyungbu highspeed railway line with 2 lanes over a length of 4, 020 m and a diameter of 15 m. The tunnel was constructed by drill & blasting method and long bench cut method, designed five types of standard support patterns according to rock mass conditions. In this tunnel, face mapping based on image processing of tunnel face and rock mass classification by RMR carried out for the quantitative evaluation of the characteristics of rock mass and compared with rock mass classes in design. Also, in-situ measurement of convergence and crown settlement conducted about 30 m interval, assessed the stability of tunnel from the analysis of monitoring data. Through the results of rock mass classification and in-situ measurement in several sections, the design of supports were modified for the safe and economic tunnelling.

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터널 막장보강효과에 대한 연구 (A study of tunnel face reinforcement)

  • Peila, Daniele;Oreste, Pier Paolo;Pelizza, Sebastiano;Kim, Sang-Hwan
    • 한국터널지하공간학회 논문집
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    • 제6권3호
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    • pp.259-267
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    • 2004
  • The practice of introducing and grouting reinforced fiber glass pipes or bar into the core to be excavated to maintain stable the tunnel face during excavation has been applied to many tunnels, where difficult geotechnical conditions are present, with good results in terms of safety and speed of works. This reinforcing technique, initially developed to be used jointly with the mechanical precut in clay, has been widely used with other geotechnical conditions as the only type of reinforcement or joined with other ground consolidation and/or reinforcement techniques (i.e. steel pipes or jet-grouting umbrella). At present same numerical researches have been carried out to find which are the real working conditions of the reinforcing elements but no final results have been obtained for the definition of the best design approaches. In this work the results of a three dimensional parametric numerical model is presented.

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전자기파를 이용한 터널전방 예측 -해석기법 중심으로 (Prediction of ground-condition ahead of tunnel face using electromagnetic wave - analytical study)

  • 최준수;조계춘;이근하;윤지남
    • 한국터널지하공간학회 논문집
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    • 제6권4호
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    • pp.327-343
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    • 2004
  • 터널 시공 도중이나 터널 굴착 직후 주지보재에 의한 보강 전에 터널막장 전방에 존재하는 연약암반 혹은 단층파쇄대로 인해 유발되는 터널막장의 붕괴사고가 빈번이 일어나고 있다. 기존의 지반탐사방법으로는 터널막장부근에 있는 연약암반이나 단층파쇄대를 찾기 어렵다. 본 연구에서는 이러한 문제점들을 극복하고 기존의 탐사방법들을 보완하기 위해 전자기파를 이용한 터널전방 예측방법을 제안하였다. 전기장의 특성을 고려한 Coulomb 및 Gauss 법칙을 이용하여 절리를 가지는 암반에서의 전기장을 해석하였다. 이를 바탕으로 터널막장 전방에 구형연약암반과 단층파쇄대가 존재하는 경우에 대하여 각각 전기장해석을 수행하여 이론식을 도출하였다. 또한 개발된 해석기법을 작용하여 터널 전방에 구형연약이역과 단층파쇄대가 존재하는 경우에 대하여 예제해석을 수행하였다. 해석결과는 터널 전방에 부착된 몇 개의 전극에서 측정된 암반의 저항으로부터 역함수기법을 이용하여 터널 전방에 존재하는 연약지역의 등가 크기, 위치 및 성질을 정확하게 예측할 수 있음을 보여주었다. 암반에서의 전기저항 가탐심도는 터널막장의 크기, 자연전위 및 기타 전기적 신호에 의해 영향을 받음을 알 수 있었다. 제시된 해석기법은 실내시험을 통하여 검증하였다. 가로, 세로, 높이가 각각 5cm인 콘크리트 블록 1800여 개를 가지고서 3방향 절리를 가진 암반상태를 구현하였고 터널 전방에 전기전도도가 콘크리트 블록보다 상대적으로 높은 물질을 이용하여 연약지반을 구현하였다. 모델링을 통한 실험결과는 해석결과와 거의 일치함을 보여주었다.

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토목설계 및 시공분야 지반조사를 위한 절리 단면 영상법 개발 및 그의 응용사례 (Development of fracture face mapping algorithm and its applications to the design of various engineering and environmental works.)

  • 김중열;김유성;김기석
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2002년도 봄 학술발표회 논문집
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    • pp.119-126
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    • 2002
  • Fractures, especially faults have most significant influence on the difficulties encountered in various engineering and mining works, because they can give rise to inevitable reductions in shear strength as well as large increase in permeability. Thus, before underground access is possible, it is desirable to estimate the distribution and geometry of fractures in advance, if reliable structural data from e.g. Televiewer tool are available. To this end, fracture face mapping is just the evaluation method used to form a fracture image determined by intersecting of each fracture plane with a selected plane section of a rock mass, assuming that all fractures be planar with fixed-aperture. Although many fractures are geometrically complex and others are altered chemically, according to the abundant experiments in recent years, it would seem that the technique could be applied to benefit the design of numerous engineering works such as slope stability, tunnel excavations, dam foundation and diverse environmental works. This paper presents at first an evaluation algorithm for fracture face mapping and then concludes with various representative examples of applications.

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굴진면 천단 및 수평보강에 따른 굴진면 전후의 종방향 아칭 특성 (Longitudinal Arching Characteristics Around the Face of a Soil-Tunnel with Crown and Face-Reinforcement)

  • 권오엽;최용기;이상덕;김영근
    • 한국지반공학회논문집
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    • 제20권9호
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    • pp.133-144
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    • 2004
  • NATM터널 시공 중 강관이나 FRP관을 이용하여 터널 막장을 선행보강하는 방법은 RPUM이나 UAM 등으로 알려져 있으며, 얕은 터널 및 연약지반내 터널 굴착 시 굴진면의 안정성을 확보해주거나 지반 침하를 감소시켜주는 역할을 한다. 특히 굴진지반이 연약하여 자립이 어려운 경우 최근에는 굴진면 천단뿐 아니라 굴진면 수평보강을 실시하여 굴착에 따른 터널안정을 확보하게 된다. 일반적으로 터널굴착이 진행됨에 따라 굴진면 전후에는 종방향 아칭현상이 발생하며 이는 NATM 터널 지보재 작용원리의 근간이 된다. 따라서 터널 천단과 굴진면 수평보강을 실시하는 경우도 굴진에 따른 종방향 아칭의 관점에서 해석되어야 하나 이에 대한 연구는 현재까지 거의 없는 실정이다. 본 연구에서는 토사터널 굴진면에 RPUM(천단보강)이나 굴진면 수평보강이 실시된 경우, 종방향 아칭특성을 2차원 실내시험을 통해 살펴보았다. 실험결과, 연직토압의 변화를 토대로 한 종방향아칭 영향범위는 무보강의 경우 굴진면 전${\cdot}$후방으로 각각 2.5D와 1.5D(D는 터널직경), 천단보강 및 수평보강의 경우 2.0D와 1.5D, 천단과 수평보강이 동시에 적용된 경우는 2.0D와 1.0D까지로 측정되어 굴진면 보강에 따라 아칭의 영향범위가 감소함을 알 수 있었다. 반면 연직토압의 변화량은 굴진면 보강에 따라 증가하는 것으로 나타나 역학적으로 천단 및 수평보강재가 터널의 안정에 중요한 역할을 하고 있는 것으로 판단된다.

고속도로 터널에 대한 전단면 발파 설계방안 연구 (Design guide for full-face blasting in highway tunnel)

  • 이상돈;최해문;이현구;류창하
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2004년도 춘계학술발표회
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    • pp.930-937
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    • 2004
  • In tunnel blasting, rock damage and overbreak at excavation limits are strongly related to stability of the tunnel and cost for rock support, and also affect to maintenance after tunnel construction. In this study, many field tests and measurements have been carried out in highway tunnels so that discordance between blast design and practical production blasting could be settled and actual methods of over break control could be proposed through the understanding of the problems in existing blasting patterns. Test blasting in tunnel was carried out many times in two tunnel sites. Also, long hole blasting longer than existing blasting pattern was executed for good grade of rock mass whose RMR value is more than 60. Using the results of test blasting, new standard blasting patterns for two lane tunnel were proposed. As a result of profile measurement after blasting, drilling is a major factor of overbreak. And then the methods for minimizing overbreak were adapted in new blasting patterns.

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굴진장을 고려한 얕은 터널파괴거동에 대한 모형실험 및 수치해석 (Model Test and Numerical Analysis for Failure Behaviour of Shallow Tunnel Considering Unsupported Tunnel Length)

  • 김영민
    • 터널과지하공간
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    • 제15권6호
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    • pp.400-410
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    • 2005
  • 토사지반에서 얕은 터널을 굴착하는 경우, 터널 막장부의 파괴 메카니즘이 터널 안정성에 큰 영향을 미친다. 본 논문에서는 일련의 굴진장을 고려한 2차원 종 방향 터널 모형 실험을수행하였다. 그 결과 얕은 터널의 파괴 메카니즘은 굴진장이 길어질수록 파괴모드 1에서 파괴모드 2로 변하는 것을 알 수 있었다. 또한, 모형실험결과와 수치해석을 비교하여 터널에 작용하는 최소 지보압과 진행성 파괴 거동에 대하여 분석하였다.

Three-dimensional limit analysis of seismic stability of tunnel faces with quasi-static method

  • Zhang, B.;Wang, X.;Zhang, J.S.;Meng, F.
    • Geomechanics and Engineering
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    • 제13권2호
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    • pp.301-318
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    • 2017
  • Based on the existing research results, a three-dimensional failure mechanism of tunnel face was constructed. The dynamic seismic effect was taken into account on the basis of quasi-static method, and the nonlinear Mohr-Coulomb failure criterion was introduced into the limit analysis by using the tangent technique. The collapse pressure along with the failure scope of tunnel face was obtained through nonlinear limit analysis. Results show that nonlinear coefficient and initial cohesion have a significant impact on the collapse pressure and failure zone. However, horizontal seismic coefficient and vertical seismic proportional coefficient merely affect the collapse pressure and the location of failure surface. And their influences on the volume and height of failure mechanism are not obvious. By virtue of reliability theory, the influences of horizontal and vertical seismic forces on supporting pressure were discussed. Meanwhile, safety factors and supporting pressures with respect to 3 different safety levels are also obtained, which may provide references to seismic design of tunnels.

Main challenges for deep subsea tunnels based on norwegian experience

  • Nilsen, Bjorn
    • 한국터널지하공간학회 논문집
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    • 제17권5호
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    • pp.563-573
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    • 2015
  • For hard rock subsea tunnels the most challenging rock mass conditions are in most cases represented by major faults/weakness zones. Poor stability weakness zones with large water inflow can be particularly problematic. At the pre-construction investigation stage, geological and engineering geological mapping, refraction seismic investigation and core drilling are the most important methods for identifying potentially adverse rock mass conditions. During excavation, continuous engineering geological mapping and probe drilling ahead of the face are carried out, and for the most recent Norwegian subsea tunnel projects, MWD (Measurement While Drilling) has also been used. During excavation, grouting ahead of the tunnel face is carried out whenever required according to the results from probe drilling. Sealing of water inflow by pre-grouting is particularly important before tunnelling into a section of poor rock mass quality. When excavating through weakness zones, a special methodology is normally applied, including spiling bolts, short blast round lengths and installation of reinforced sprayed concrete arches close to the face. The basic aspects of investigation, support and tunnelling for major weakness zones are discussed in this paper and illustrated by cases representing two very challenging projects which were recently completed (Atlantic Ocean tunnel and T-connection), one which is under construction (Ryfast) and one which is planned to be built in the near future (Rogfast).