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A study on the optimal reinforced zone of a small sectional shield TBM tunnel in difficult ground

특수지반 구간의 소단면 쉴드 TBM 터널 굴착 시 최적 보강영역 연구

  • 강병윤 ((주)수성엔지니어링) ;
  • 박형근 (충북대학교 토목공학부) ;
  • 차재훈 ((주)수성엔지니어링 지반부) ;
  • 김영진 ((주)수성엔지니어링 지반부)
  • Received : 2019.08.02
  • Accepted : 2019.09.04
  • Published : 2019.11.30

Abstract

Due to the lack of ground space by urbanization, the demand of utility tunnels for laying social facilities is increasing. During the construction of a utility tunnel in downtown area using a shield TBM, various problems may occur when difficult ground is encountered such as mixed ground and cobbly ground. Thus, in this study, using MIDAS GTS NX (Ver. 280), a numerical analysis was performed on characteristics of difficult ground, reinforced area, depth of cover and groundwater level to analyze the optimal ground reinforced area according to combination of parameters. As a result, it was difficult to secure stability in unconstrained excavation cases on both the mixed ground and the cobbly ground. However, when ground reinforcement grouting as much as 2.0D is applied, convergence occurred within the allowable limit, except for mixed ground with a depth of cover 30 m. In addition, excessive leakage occurred during excavation of both the mixed ground and the cobbly layers. It was able to secure stability after applying waterproof grouting.

도시화에 따른 지상공간 부족으로 인해 사회시설물 매설을 위한 공동구 터널의 수요가 증가하고 있다. 쉴드 TBM 공법을 이용한 도심지에서의 공동구 터널 시공 중 불가피하게 복합지반, 호박돌층과 같은 특수지반 조우 시 여러 가지 트러블이 발생하여 공기 및 공사비가 증가될 수 있다. 따라서 본 연구에서는 MIDAS GTS NX (Ver. 280)을 이용해 특수지반의 특성, 보강영역, 토피고, 수위를 달리하여 수치해석을 수행하여 매개변수 조합에 따른 최적의 지반보강영역을 분석하였다. 그 결과 복합지반과 호박돌층 모두 무보강 지반굴착 시 안정성 확보가 어려웠으나 최대 2.0D 만큼의 지반보강 그라우팅 적용 시 토피고 30 m인 복합지반을 제외하고 내공변위가 허용치 내로 발생하였다. 또한 복합지반 및 호박돌층 모두 굴착 시 과다한 지하수 유출이 발생하여 차수그라우팅 적용 후 안정성을 확보할 수 있었다.

Keywords

References

  1. Architecture and Civil Engineering Dictionary (1994), Korea dictionary research publishing, pp. 1401.
  2. Cho, W.S. (2016), Numerical analysis on the behavior of shield TBM cable tunnel, Master Thesis, Inha University, pp. 104.
  3. Cho, W.S., Song, K.I., Kim, K.Y. (2014), "The study on the effect of fracture zone and its orientation on the behavior of shield TBM cable tunnel", Korean Tunnelling and Underground Space Association, Vol. 16, No. 4, pp. 403-415. https://doi.org/10.9711/KTAJ.2014.16.4.403
  4. Gong, Q., Yin, L., Ma, H., Zhao, J. (2016), "TBM tunneling under adverse geological conditions: An overview", Tunnelling and Underground Space Technology, Vol. 57, pp. 4-17. https://doi.org/10.1016/j.tust.2016.04.002
  5. Hunt, S.W. (2017), Tunneling in cobbles and boulders, Breakthroughs in Tunneling Short Course, Chicago, USA, pp.1-46.
  6. Im, J.C., Hong, S.W. (2001), "A case study on the decision of boulder layer in Busan subway construction site", Korean Tunnelling and Underground Space Association, Vol. 3, No. 3, pp. 50-57.
  7. Jeong, H.Y., Zhang, N., Jeon, S.W. (2018), "Review of technical issues for shield TBM tunneling in difficult grounds", Korean Society for Rock Mechanics and Rock Engineering, Vol. 28, No. 1, pp. 1-24.
  8. Kim, J.W. (2013), Case study on the effectiveness of injection in LW grouting, Master Thesis, Pukyong National University, pp. 101.
  9. Kim, K.Y. (2015), A study on cutter exchange cycle in earth pressure balance shield TBM method during the drilling of complex strata for city railway construction, Master Thesis, Seoul National University of Science and Technology, pp. 71.
  10. Kim, S.S. (2001), A study on forecasting ultimate displacement in tunneling, Master Thesis, Inha University, pp. 58.
  11. Korean Agency for Technology and Standards (1992), KS F 2302 (in Korean).
  12. Kwak, C.W., Park, I.J. (2015), "Numerical simulation for surface settlement considering face vibration of TBM tunnelling in mixed-face condition", Korean Tunnelling and Underground Space Association, Vol. 17, No. 3, pp. 333-339. https://doi.org/10.9711/KTAJ.2015.17.3.333
  13. Lee, S.W. (2008), Development of simulation model for urban subway tunnel construction based on simulation, Master Thesis, Inha University, pp. 61.
  14. Ministry of Land, Transport and Maritime Affairs (2011), Road Design Manual-Tunnel (in Korean), pp. 1118.
  15. Nam, K.C., Heo, Y., You, K.H. (2003), "The effects of the face reinforcement at shallow tunnels in fractured rock masses", Korean Tunnelling and Underground Space Association, Vol. 5, No. 4, pp. 323-336.
  16. Oh, T.S. (2014), Model testing and analysis on shield TBM excavation for railway tunnel in mixed ground, Ph.D. Thesis, Seoul National University of Science and Technology, pp. 124.
  17. Seo, M.B. (2016), Ground reinforcement effect of short-period vibration grouting, Ph.D. Thesis, Korea National University of Transportation, pp. 130.