바로가기메뉴

본문 바로가기 주메뉴 바로가기

ACOMS+ 및 학술지 리포지터리 설명회

  • 한국과학기술정보연구원(KISTI) 서울분원 대회의실(별관 3층)
  • 2024년 07월 03일(수) 13:30
 

logo

Open face 터널시공으로 인한 단독말뚝의 거동

The response of a single pile to open face tunnelling

(사)한국터널지하공간학회 / (사)한국터널지하공간학회, (P)2233-8292; (E)2287-4747
2012, v.14 no.5, pp.529-545
이철주 (강원대학교)

초록

본 연구에서는 3차원 유한요소해석을 실시하여 견고한 점토에 기시공되어 있는 단독말뚝의 하부에서 실시된 open face 터널굴착에 의한 말뚝의 거동을 분석하였다. 수치해석에서는 터널굴착으로 인한 말뚝의 거동을 규명하기 위하여 지반, 말뚝의 침하 및 전단응력전이 메커니즘을 심도 있게 분석하였다. 터널굴착으로 인해 Greenfield 조건의 지표면의 침하를 크게 초과하는 말뚝침하가 발생하였으며, 말뚝과 인접지반 사이 경계면에서의 전단응력전이현상으로 인해 말뚝에 작용하는 축력의 분포가 매우 크게 변화하였다. 말뚝침하의 증가로 인하여 말뚝의 겉보기지지력 (apparent pile capacity) 이 약 30% 감소하는 것으로 분석되었다. 터널굴착에 따른 지중응력 및 변형에 의해 말뚝의 마찰력이 증가하는 현상이 발생하고 이에 따라 말뚝의 축력이 터널의 굴착에 따라 지속적으로 감소하였다. 순수하게 터널굴착에 의하여 단독말뚝에는 설계하중의 최대 21%에 상응하는 인장력이 유발되는 것으로 분석되었다. 말뚝은 터널의 시공이 말뚝의 중심에서 종방향으로 ±1-2D (D: 터널직경)에서 실시될 때 가장 큰 영향을 받는 것으로 나타났다. 말뚝선단 인근에서는 (-)의 과잉간극수압이 발생하였으며, 말뚝상부 부근에서는 (+)의 과잉간극수압이 발현하였다. 터널굴착에 의한 말뚝의 사용성은 축력변화에 비해서는 말뚝의 침하에 의해 큰 영향을 받는 것으로 분석되었다.

keywords
압밀해석, 수치해석 및 분석, 말뚝, 견고한 점토, 구조물-지반상호 거동, 터널, Coupled analysis, numerical modelling and analysis, piles, stiff clay, Soil-structure interaction, tunnel

Abstract

Three-dimensional (3D) finite element analyses have been performed to study the behaviour of a single pile to open face tunnelling in stiff clay. Several key factors such as tunnelling-induced ground and pile settlement, and shear transfer mechanism have been studied in detail. Tunnelling resulted in the development of pile settlement larger than the Greenfield soil surface settlement. In addition, due to changes in the shear transfer between the pile and the soil next to the pile with tunnel advancement, axial force distributions along the pile change drastically. The apparent allowable pile capacity was reduced up to about 30% due to the development of tunnelling-induced pile head settlement. The skin friction on the pile was increased with tunnel advancement associated with the changes of soil stresses and ground deformation and hence axial pile force distribution was reduced. Maximum tunnelling-induced tensile force on the pile was about 21% of the designed pile capacity. The zone of influence on the pile behaviour in the longitudinal direction may be identified as ±1-2D (D: tunnel diameter) from the pile centre (behind and ahead of the pile axis in the longitudinal direction) based on the analysis conditions assumed in the current study. Negative excess pore pressure was mobilised near the pile tip, while positive excess pore pressure was computed at the upper part of the pile. It has been found that the serviceability of a pile experiencing adjacent tunnelling is more affected by pile settlement than axial pile force changes.

keywords
압밀해석, 수치해석 및 분석, 말뚝, 견고한 점토, 구조물-지반상호 거동, 터널, Coupled analysis, numerical modelling and analysis, piles, stiff clay, Soil-structure interaction, tunnel

참고문헌

1.

이용주 (2008), 기존 파일기초에 근접한 터널굴착으로 인한 전단변형률 형성에서의 경계선, 한국터널공학회 논문집, 제10권, 제3호, pp. 283-293.

2.

이철주 (2012), 사용 중인 단독 및 군말뚝의 측면에서 실시된 터널굴착으로 인한 말뚝의 거동, 한국터널지하공간학회논문집. 제14권, 제4호, pp. 337-356.

3.

최고니, 우승제, 유충식 (2011), 교량 직하부에 시공되는 터널에 의한 말뚝기초의 거동변화, 한국터널지하공간학회논문집, 제13권 제1호, pp. 51-69.

4.

Bakker, K.J., Bezuijen, A. (2008), “Ten years of bored tunnels in the netherlands”, Geotechniek, April, pp. 6-13.

5.

Chapman, D., Metje, N., Stärk, A. (2010), “Introduction to tunnel construction”, Spon Press, pp. 128-129, 268

6.

Cheng, C.Y, Dasari, G.R, Chow, Y.K., Leung, C.F. (2007), “Finite element analysis of tunnel-soil-pile interaction using displacement controlled model”, Tunnelling and Underground Space Technology, Vol. 22, pp. 450-466.

7.

Davisson, M.T. (1972), “High capacity piles. Proceedings of Lecture Series in Innovations in Foundation Construction”, ASCE, Illinois Section, pp. 81-112.

8.

Devriendt, M., Williamson, M. (2011), “Validation of methods for assessing tunnelling-induced settlements on piles”, Ground Engineering, March, pp. 25-30.

9.

Huang, M, Zhang, C., Li, Z. (2009), “A simplified analysis method for the influence of tunnelling on grouped piles,” Tunnelling and Underground Space Technology, Vol. 24, pp. 410-422.

10.

Jacobsz, S.W. (2002), “The effects of tunnelling on piled foundations”, PhD thesis, University of Cambridge.

11.

Jacobsz, S.W. (2003), “Tunnelling effects on piled foundations”, Tunnels and Tunnelling international, June, pp. 28-31.

12.

Kaalberg, F.J., Teunissen, E.A.H., van Tol A.F., Bosch, J.W. (2005), “Dutch research on the impact of shield tunneling on pile foundations”, Geotechnical Aspects of Underground Construction in Soft Ground, Proceedings of 5th International Conf. of TC 28 of the ISSMGE, pp. 123-133.

13.

Kitiyodom, P., Matsumoto, T., Kawaguchi, K. (2005), “A simplified analysis method for piled raft foundations subjected to ground movements induced by tunneling”, Int. J. Numer. Anal. Meth. Geomech. Vol. 29, pp. 1485-1507.

14.

The Institution of Civil Engineers (ICE). (1996), “Sprayed Concrete Linings (NATM) for tunnels in soft ground”, ICE Design and Practice Guides, Thomas Telford, London. pp. 1-14.

15.

Lee, G.T.K. (2003), “Three-dimensional numerical studies of NATM tunnelling in stiff clay,” MS Philosophy thesis, the Hong Kong University of Science and Technology, Hong Kong.

16.

Lee, G.T.K., Ng, C.W.W. (2005), “The effects of advancing open face tunneling on an existing loaded pile”, Journal of Geotechnical and Geoenvironmental Engineering, ASCE, Vol. 131, No. 2, pp. 193-201.

17.

Lee, S.W, Choy, C.K.M, Cheang, W.W.L, Swolfs, W., Brinkgreve, R. (2010), “Modelling of tunnelling beneath a building supported by friction bored piles”, The 17th Southeast Asian Geotechnical Conference, pp. 215-218.

18.

Lee, Y.J. (2004), “Tunnelling adjacent to a row of loaded piles”, PhD Thesis, University College London, University of London.

19.

Lee, Y.J., Bassett, R.H. (2007), “Influence zones for 2D pile-soil-tunnelling interaction based on model test and numerical analysis”, Tunnelling and underground space technology, 22, pp. 325-342.

20.

Loganathan, N., Poulos, H.G. (1998), “Analytical prediction for tunneling-induced ground movement in clays,” J. Geotech. Geoenviron. Eng., ASCE, Vol. 124, No. 9, pp. 846-856.

21.

Loganathan, N., Poulos, H.G., Xu, K.J. (2001), “Ground and pile-group responses due to tunneling”, Soils and Foundations, 41, pp. 57-67.

22.

Mair, R.J., Taylor, R.N. (1997), “Theme lecture: bored tunnels in the urban environment”, Proc. 14th International Conference on Soil Mechanics and Foundation Engineering, Hamburg, Balkema, Vol. 4. pp. 2353-2385.

23.

Mroueh, H., Shahrour, I. (2002), “Three-dimensional finite element analysis of the interaction between tunnelling and pile foundation”, Int. J. Numer. Anal. Meth. Geomech. Vol. 26, pp. 217-230.

24.

Pang, C.H. (2006), “The effects of tunnel construction on nearby pile foundation”, PhD thesis, The National University of Singapore.

25.

Plaxis. (2011), Plaxis 3D user’s manual.

26.

Selemetas, D. (2005), “The response of full-scale piles and piled structures to tunnelling”, PhD thesis, University of Cambridge.

27.

Thomas, A. (2009), “Sprayed concrete lined tunnels”, Taylor & Francis, London and New York. pp. 1-8.

28.

Xu, K.J., Poulos, H.G. (2001), “3-D elastic analysis of vertical piles subjected to ‘passive’ loadings”, Comput. Geotech. Vol. 28, pp. 349-375.

(사)한국터널지하공간학회