• 제목/요약/키워드: Tunnel invert

검색결과 25건 처리시간 0.023초

수치해석에 의한 연약지반 터널의 바닥부 곡률의 영향 분석 (The effect of curvature at the bottom of a soft ground tunnel by numerical analysis)

  • 유광호;김강산
    • 한국터널지하공간학회 논문집
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    • 제23권2호
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    • pp.107-118
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    • 2021
  • 도로건설의 가속화로 인해 매년 터널의 개소와 터널 연장이 증가하는 추세이다. 터널의 붕락에 관련된 연구는 많이 진행됐으나 바닥부 융기와 관련된 연구는 미흡한 실정이다. 따라서 본 연구에서는 연약지반에서 터널의 바닥부 곡률의 영향을 분석하고자 지반범용해석 프로그램을 이용하여 민감도 분석을 실시하였다. 그 결과 터널의 바닥부 곡률이 커질수록 지반조건 및 지보재 두께와 관계없이 안전율이 크게 산출되어 터널의 안정성이 증가됨을 정량적으로 확인하였다. 또한, 터널의 내공변위 및 숏크리트가 받는 최대 휨응력도 감소하여 터널의 안정성이 증대됨을 확인하였다. 따라서 연약지반에서 터널을 굴착할 경우 바닥부에 곡률을 적용하는 것이 터널의 안정성을 증대시킬 것으로 판단된다.

한강 단층대를 통과하는 하저터널의 안정성 확보에 관한 연구 (Stability Evaluation for a riverbed tunnel in the Han River at the Fault Zone Crossing)

  • 우종태;이송
    • 한국구조물진단유지관리공학회 논문집
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    • 제5권3호
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    • pp.225-231
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    • 2001
  • When building tunnels beneath riverbeds where very large quantities of groundwater inflow exist, added to high water head the soil supporting conditions are very poor because the soil consists of sand and silt, etc. It is necessary to have grouting and mini pipe roof installed in the region for ground reinforcement to decrease permeability. According to this result of horizontal boring and laboratory soil testing, ground reinforcement was achieved by L.W grouting for range of 3.0 times the tunnel radius, to increase stability of the tunnel we used the ling-cut method, 0.8m for one step excavation, shotcrete with 25cm thick, steel lib with H-$125{\times}125$. and a temporary shotcrete invert 20cm thick was installed to prevent deformation of the tunnel.

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수치해석수법과 지질공학적 분석을 통한 NATM터널의 붕괴메커니즘에 관한 연구 (Failure Mechanism of NATM tunneling using Computational Methods and Geology Investigation)

  • 이재호;김영수;최해준;정윤영;김광일;임홍래
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2008년도 춘계 학술발표회 초청강연 및 논문집
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    • pp.742-753
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    • 2008
  • Currently an increasing number of urban tunnels with small overburden are excavated according to the principle of the New Austrian Tunneling Method (NATM). Therefore, a possibility of a tunnel collapse during excavation is getting higher in a proportionate manner. This paper will analyze causes the failure mechanism of a shallow NATM tunnel for different geological conditions, ground-water and invert solutions by investigation typical collapse site during tunnel construction. In this paper, this analysis performed two phase, firstly, the field investigation considering displacement measurement, ground-water level, geological characteristic, secondly, the numerical simulation considering the exist of invert construction and the effect of ground-water. It has been found that environmental factors such as state of underground water or construction sequences could influence failure mechanism of a shallow tunnel.

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석회암공동 분포지역에서의 터널 시공사례 (A Case Study on Construction of Tunnel at Limestone Cavity Site)

  • 김시격;강인섭;김용하;윤일병;문훈기
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2006년도 추계 학술발표회
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    • pp.66-75
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    • 2006
  • As construction for road tunnel is increasing, various geotechnical conditions can be faced during the construction stage. Especially, if the tunnel is located in limestone area, many kinds of site investigations such as in-situ boring, electrical resistance survey, TSP(Tunnel Seismic Prediction) and etc., are conducted before and during the construction. By conducting these preliminary tests, location, size, and filling materials in limestone cavities can be approximately estimated. Once some cavities which can be harmful for tunnel safety are predicted, methods for ground reinforcement and tunnel excavation, corresponding those ground conditions, have to be established and verified by measurement data and numerical analysis. If necessary, invert lining should be also considered. In this paper, by studying some cases of tunnels constructed in limestone area, predicted problems during construction and rational countermeasures for those are presented.

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사질토지반에서 2 Arch 터널의 거동 (Behavior of 2 Arch Tunnel in Sand)

  • 이상덕;전은숙
    • 한국터널지하공간학회 논문집
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    • 제6권2호
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    • pp.171-182
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    • 2004
  • 사질토지반에서 2 Arch 터널을 굴착할 때에 중앙터널의 굴착규모와 인버트 폐합에 따른 중앙필러 및 터널 주변지반의 거동특성을 규명하기 위하여 모형실험을 수행하였다. 3개로 분리되어 수직이동이 가능한 가동판 위에 중앙필러와 모형라이닝을 설치하고 모형지반 조성 후에 가동판을 강하시켜서 중앙터널굴착을 표현하였고, 중앙터널굴착 후에 좌 우측 터널을 굴착하였으며 굴착이 완료된 2 Arch 터널 전체에 대한 가동판을 움직여서 2 Arch 터널굴착에 따른 하중전이 및 지반이완 형태는 물론 중앙필러에 작용하는 하중의 변화를 관찰하였다. 실험중에 가동판, 중앙필러 및 바닥판에 작용하는 이완하중 및 전이하중을 측정하였고, 모형터널의 내부와 지중 및 지표에 변위계를 설치하여 모형터널의 내공변위 및 지반의 변위를 측정하였다. 본 연구결과 시공순서와 라이닝의 기초부 구속조건에 따라 중앙필러가 부담하게 되는 하중의 변화를 확인하였고 2 Arch 터널굴착에 따른 하중전이 및 지반이완형태를 확인하였다.

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도심지 지하철 터널의 지반보강공법 시공사례 연구 (A Case Study on the Reinforcement Method of Subway Tunnel)

  • 천병식;여유현;최현석
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 1999년도 가을 학술발표회 논문집
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    • pp.201-208
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    • 1999
  • The NATM(New Austrian Tunnelling Method) has been used for tunnelling since 1980's. But Collapses of tunnel under construction take place frequently, especially at urban areas because of adjacent buildings, underground conduits and traffic loads. This paper is a case study on the reinforcement method of subway tunnel at urban areas. In this study, ground inspection, geological investigation, laboratory test and numerical analysis by means of FDM program were carried out. The tunnel excavation was stopped because of over excessive brake of tunnel crown and shotcrete was installed to prevent deformation of adjacent ground as the temporary method. From the result of field survey and geological investigation, it is found that the soft weathered soil was distributed to the ground of tunnel invert unlike original investigation. The results of the analysis and the study show that the SGR(Space Grouting Rocket) method and Umbrella method can be applied for the stability of tunnel excavation and in addition the reinforcement of concrete lining is required for long-term stability of tunnel.

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터널시공 중 붕락발생 원인과 최신 보강기술 (Major causes of failure and recent measurements of tunnel construction)

  • 박봉기;황제돈;박치면;김상수
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2005년도 지반공학 공동 학술발표회
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    • pp.140-153
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    • 2005
  • During the tunnel construction the major failure mode can be categorized as: tunnel failure just after the tunnel excavation without support, failure after application of shotcrete and finally failure after setting the concrete lining. The failure mode just after the tunnel excavation without support, can be further classified as : bench failure, crown failure, face failure, full face failure, failure due to weak strata and failure due to overburden. Moreover the failure after application of shotcrete is classified as heading face failure, settlement of shotcrete support, local failure of shotcrete lining and invert shotcrete. To find out the major causes of tunnel collapse, the investigation was done in case of the second phase of Seoul subway construction. The investigation results depicted that the major causes of tunnel collapse were due to the weak layer of rock/fault and sudden influx of ground water from the tunnel crown. While the investigation results of the mountain road tunnels construction have shown that the major causes of tunnel failure were inadequate analysis of tunnel face mapping results, intersection of faults and limestone cavities. In this paper some recent measurement in order to mitigate such tunnel collapse are presented

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3차원 유한요소법을 이용한 터널 막장 주위에서의 응력 재분배 해석에 관한 연구 (An Analysis for the Stress Redistribution around Tunnel Face Using Three-Dimensional Finite Element Method)

  • 문선경;이희근
    • 터널과지하공간
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    • 제5권2호
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    • pp.95-103
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    • 1995
  • In this paper the stress redistribution around tunnel face was analyzed by using a three-dimensional finite element model. The effects of in-situ stress levels, excavation sequences, stiffness difference between the hard ground and the weak zone on the stress redistributions were considered. Displacement and stress changes at tunnel crown, side wall, and invert were investigated throughout the sequential excavation. To show ground response, percentage of the displacement and stress variations are used as a function of normalized distance that is between the face and monitoring section. Preceding displacements and stress variations were presented to be adopted in the two-dimensional tunnel analysis.

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Three-dimensional numerical parametric study of shape effects on multiple tunnel interactions

  • Chen, Li'ang;Pei, Weiwei;Yang, Yihong;Guo, Wanli
    • Geomechanics and Engineering
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    • 제31권3호
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    • pp.237-248
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    • 2022
  • Nowadays, more and more subway tunnels were planed and constructed underneath the ground of urban cities to relieve the congested traffic. Potential damage may occur in existing tunnel if the new tunnel is constructed too close. So far, previous studies mainly focused on the tunnel-tunnel interactions with circular shape. The difference between circular and horseshoe shaped tunnel in terms of deformation mechanism is not fully investigated. In this study, three-dimensional numerical parametric studies were carried out to explore the effect of different tunnel shapes on the complicated tunnel-tunnel interaction problem. Parameters considered include volume loss, tunnel stiffness and relative density. It is found that the value of volume loss play the most important role in the multi-tunnel interactions. For a typical condition in this study, the maximum invert settlement and gradient along longitudinal direction of horseshoe shaped tunnel was 50% and 96% larger than those in circular case, respectively. This is because of the larger vertical soil displacement underneath existing tunnel. Due to the discontinuous hoop axial stress in horseshoe shaped tunnel, significant shear stress was mobilized around the axillary angles. This resulted in substantial bending moment at the bottom plate and side walls of horseshoe shaped tunnel. Consequently, vertical elongation and horizontal compression in circular existing tunnel were 45% and 33% smaller than those in horseshoe case (at monitored section X/D = 0), which in latter case was mainly attributed to the bending induced deflection. The radial deformation stiffness of circular tunnel is more sensitive to the Young's modulus compared with horseshoe shaped tunnel. This is because of that circular tunnel resisted the radial deformation mainly by its hoop axial stress while horseshoe shaped tunnel do so mainly by its flexural rigidity. In addition, the reduction of soil stiffness beneath the circular tunnel was larger than that in horseshoe shaped tunnel at each level of relative density, indicating that large portion of tunneling effect were undertaken by the ground itself in circular tunnel case.

Investigations of countermeasures used to mitigate tunnel deformations due to adjacent basement excavation in soft clays

  • Jinhuo Zheng;Minglong Shen;Shifang Tu;Zhibo Chen;Xiaodong Ni
    • Geomechanics and Engineering
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    • 제36권6호
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    • pp.563-573
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    • 2024
  • In this study, various countermeasures used to mitigate tunnel deformations due to nearby multi-propped basement excavation in soft clay are explored by three-dimensional numerical analyses. Field measurements are used to calibrate the numerical model and model parameters. Since concrete slabs can constrain soil and retaining wall movements, tunnel movements reach the maximum value when soils are excavated to the formation level of basement. Deformation shapes of an existing tunnel due to adjacent basement excavation are greatly affected by relative position between tunnel and basement. When the tunnel is located above or far below the formation level of basement, it elongates downward-toward or upward-toward the basement, respectively. It is found that tunnel movements concentrate in a triangular zone with a width of 2 He (i.e., final excavation depth) and a depth of 1 D (i.e., tunnel diameter) above or 1 D below the formation level of basement. By increasing retaining wall thickness from 0.4 m to 0.9 m, tunnel movements decrease by up to 56.7%. Moreover, tunnel movements are reduced by up to 80.7% and 61.3%, respectively, when the entire depth and width of soil within basement are reinforced. Installation of isolation wall can greatly reduce tunnel movements due to adjacent basement excavation, especially for tunnel with a shallow burial depth. The effectiveness of isolation wall to reduce tunnel movement is negligible unless the wall reaches the level of tunnel invert.