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Influence characteristics of isolation piles on deformation of existing shallow foundation buildings under deep excavation

  • Liu, Xinrong (College of Civil Engineering, Chongqing University) ;
  • Liu, Peng (College of Civil Engineering, Chongqing University) ;
  • Zhou, Xiaohan (College of Civil Engineering, Chongqing University) ;
  • Wang, Linfeng (College of Civil Engineering, Chongqing University) ;
  • Zhong, Zuliang (College of Civil Engineering, Chongqing University) ;
  • Lou, Xihui (China Railway Major Bridge Reconnaissance & Design Institute Co., Ltd.) ;
  • Chen, Tao (China Railway Major Bridge Reconnaissance & Design Institute Co., Ltd.) ;
  • Zhang, Jilu (College of Civil Engineering, Chongqing University)
  • Received : 2021.06.03
  • Accepted : 2022.07.23
  • Published : 2022.10.10

Abstract

Urban deep excavation will affect greatly on the deformation of adjacent existing buildings, especially those with shallow foundations. Isolation piles has been widely used in engineering to control the deformation of buildings adjacent to the excavation, but its applicability is still controversial. Based on a typical engineering, numerical calculation models were established and verified through monitoring data to study the influence characteristics of isolation piles on the deformation of existing shallow foundation buildings. Results reveal that adjacent buildings will increase building settlement δv and the deformation of diaphragm walls δh, while the isolation piles can effectively decrease these. The surface settlement curve is changed from "groove" type to "double groove" type. Sufficiently long isolation pile can effectively decrease δv, while short isolation piles will lead to a negative effect. When the building is within the range of the maximum settlement location P, maximum building rotation θm will increase with the pile length L and the relative position between isolation pile and building d/D increase (d is the distance between piles and diaphragm walls, D is the distance between buildings and diaphragm walls), instead, θm will decrease for buildings outside the location P, and the optimum was obtained when d/D=0.7.

Keywords

Acknowledgement

The research described in this paper was financially supported by the National Natural Science Foundation for Young Scientists of China (Grant No. 52104076) and Graduate Scientific Research and Innovation Foundation of Chongqing, China (Grant No. CYB20031).

References

  1. Bilotta, E. (2008), "Use of diaphragm walls to mitigate ground movements induced by tunnelling", Geotechnique, 58(2), 143-155. https://doi.org/10.1680/geot.2008.58.2.143.
  2. Bilotta, E. and Russo, G. (2011), "Use of a line of piles to prevent damages induced by tunnel excavation", J. Geotech. Geoenviron. Eng., 137(3), 254-262. https://doi.org/10.1061/(ASCE)GT.1943-5606.0000426.
  3. Canakci, H. and Hamed, M. (2017), "Experimental study on axial response of different pile materials in organic soil", Geomech. Eng., 12(6), 899-917. https://doi.org/10.12989/gae.2017.12.6.899.
  4. Castaldo, P., Calvello, M. and Palazzo, B. (2013). "Probabilistic analysis of excavation-induced damages to existing structures", Comput. Geotech., 53, 17-30. https://doi.org/10.1016/j.compgeo.2013.04.008.
  5. Chen, J.J., Zhu, Y.F., Li, M.G. and Wen, S.L. (2015), "Novel excavation and construction method of an underground highway tunnel above operating metro tunnels", J. Aerosp. Eng., 28(6), A4014003. https://doi.org/10.1061/(ASCE)AS.1943-5525.0000437.
  6. Chen, R.P., Meng, F.Y., Li, Z.C., Ye, Y.H. and Ye, J.N. (2016), "Investigation of response of metro tunnels due to adjacent large excavation and protective measures in soft soils", Tunnel. Undergr. Space Technol., 58, 224-235. https://doi.org/10.1016/j.tust.2016.06.002.
  7. Chowdhury, S.S., Deb, K. and Sengupta, A. (2013), "Estimation of design parameters for braced excavation: Numerical study", Int. J. Geomech., 13(3), 234-247. https://doi.org/10.1061/(ASCE)GM.1943-5622.0000207.
  8. Cui, Q.L., Wu, H.N., Shen, S.L., Yin, Z.Y. and Horpibulsuk, S. (2016), "Protection of neighbor buildings due to construction of shield tunnel in mixed ground with sand over weathered granite", Environ. Earth Sci., 75(6), 1-11. https://doi.org/10.1007/s12665-016-5300-7.
  9. Demeijer, O., Chen, J.J., Li, M.G., Wang, J.H. and Xu, C.J. (2018), "Influence of passively loaded piles on excavation-induced diaphragm wall displacements and ground settlements", Int. J. Geomech., 18(6), 04018052. https://doi.org/10.1061/(ASCE)GM.1943-5622.0001126.
  10. Gao, G.Y., Li, Z.Y., Qiu, C. and Yue, Z.Q. (2006), "Three-dimensional analysis of rows of piles as passive barriers for ground vibration isolation", Soil Dyn. Earthq. Eng., 26(11), 1015-1027. https://doi.org/10.1016/j.soildyn.2006.02.005.
  11. Haigh, S.K. and Madabhushi, S.P.G. (2011), "Centrifuge modelling of pile-soil interaction in liquefiable slopes", Geomech. Eng., 3(1), 1-16. https://doi.org/10.12989/gae.2011.3.1.001.
  12. Jiang, J., Qi, B. and Liu, G.B. (2008), "Factors and prediction on deformation of soldier piles in deep foundation pits in soft area", Chin. J. Geotech. Eng., 30(S1), 363-368. (in Chinese)
  13. Jiang, S.Y., Du, C.B. and Sun, L.G. (2018), "Numerical analysis of sheet pile wall structure considering soil-structure interaction", Geomech. Eng., 16(3), 309-320. https://doi.org/10.12989/gae.2018.16.3.309.
  14. Kumara, J.J., Kurashina, T. and Kikuchi, Y. (2016), "Effects of pile geometry on bearing capacity of open-ended piles driven into sands", Geomech. Eng., 11(3), 385-400. https://doi.org/10.12989/gae.2016.11.3.385.
  15. Li, M.G., Chen, J.J., Xu, A.J., Xia, X.H. and Wang, J.H. (2014), "Case study of innovative top-down construction method with channel-type excavation", J. Constr. Eng. Manage., 140(5), 05014003. https://doi.org/10.1061/(ASCE)CO.1943-7862.0000828.
  16. Liu, S.H., Yang, J.S., Fu, J.Y. and Zheng, X.C. (2019), "Performance of a deep excavation irregular supporting structure subjected to asymmetric loading", Int. J. Geomech., 19(7), 05019007. https://doi.org/10.1061/(ASCE)GM.1943-5622.0001468.
  17. Maddah, A. and Soroush, A. (2020), "A comprehensive numerical study on building-excavation", Civil Eng. J.-Tehran, 6(2), 326-343. https://doi.org/10.28991/cej-2020-03091474.
  18. Maddah, A., Soroush, A. and Shafipour, R. (2021), "A new concept for interpretation of building-excavation interaction in 3D conditions", Tunnel. Undergr. Space Technol., 109, 103757. https://doi.org/10.1016/j.tust.2020.103757.
  19. Mansouri, H. and Asghari-Kaljahi, E. (2019), "Two dimensional finite element modeling of Tabriz metro underground station L2-S17 in the marly layers", Geomech. Eng., 19(4), 315-327. https://doi.org/10.12989/gae.2019.19.4.315.
  20. Mitew-Czajewska, M. (2018), "A study of displacements of structures in the vicinity of deep excavation", Arch. Civil Mech. Eng., 19(2), 547-556. https://doi.org/10.1016/j.acme.2018.11.010.
  21. Nikiforova, N.S. and Vnukov, D.A. (2012) "Geotechnical cut-off diaphragms for built-up area protection in urban underground development", 7th International Symposium on Geotechnical Aspects of Underground Construction in Soft Ground, Rome, Italy, May.
  22. Ou, C.Y. and Hsieh, P.G. (2011), "A simplified method for predicting ground settlement profiles induced by excavation in soft clay", Comput. Geotech., 38(8), 987-997. https://doi.org/10.1016/j.compgeo.2011.06.008.
  23. Ou, C.Y., Teng, F.C. and Wang, I.W. (2008), "Analysis and design of partial ground improvement in deep excavations", Comput. Geotech., 35(4), 576-584. https://doi.org/10.1016/j.compgeo.2007.09.005.
  24. Piciullo, L., Ritter, S., Lysdahl, A.O.K., Langford, J. and Nadim, F. (2021), "Assessment of building damage due to excavation-induced displacements: The GIBV method", Tunnel. Undergr. Space Technol., 108, 103673. https://doi.org/10.1016/j.tust.2020.103673.
  25. Qian, J.G., Tong, Y.M., Mu, L.L., Lu, Q. and Zhao, H.Q. (2020), "A displacement controlled method for evaluating ground settlement induced by excavation in clay", Geomech. Eng., 20(4), 275-285. https://doi.org/10.12989/gae.2020.20.4.275.
  26. Rezvani, R. and Tutunchian, M.A. (2021). "Horizontal displacement of urban deep excavated walls supported by multistrands anchors, steel piles, and in situ concrete piles: Case study", Int. J. Geomech., 21(1), 05020008. https://doi.org/10.1061/(ASCE)GM.1943-5622.0001890.
  27. Schuster, M., Kung, G.T.C., Juang, C.H. and Hashash, Y.M.A. (2009), "Simplified model for evaluating damage potential of buildings adjacent to a braced excavation", J. Geotech. Geoenviron. Eng., 135(12), 1823-1835. https://doi.org/10.1061/(ASCE)GT.1943-5606.0000161.
  28. Shen, Y.J., Wu, Z.J., Xiang, Z.L. and Yang, M. (2017), "Physical test study on double-row long-short composite anti-sliding piles", Geomech. Eng., 13(4), 621-640. https://doi.org/10.12989/gae.2017.13.4.621.
  29. Son, M. and Cording, E.J. (2005), "Estimation of building damage due to excavation-induced ground movements", J. Geotech. Geoenviron. Eng., 131(2), 162-177. https://doi.org/10.1061/(ASCE)1090-0241(2005)131:2(162).
  30. Talha, S.B. (2001), "Deformation behaviors of a retaining wall for a deep basement excavation with semi-top down method", Proceedings of the 14th Southeast Asian Geotechnical Conference, Hong Kong, China, December.
  31. Tan, Y., Huang, R.Q., Kang, Z.J. and Bin, W. (2016), "Covered semi-top-down excavation of subway station surrounded by closely spaced buildings in downtown Shanghai: Building response", J. Perform. Constr. Facil., 30(6), 1-26. https://doi.org/10.1061/(ASCE)CF.1943-5509.0000892.
  32. Wang, J.H., Xu, Z.H. and Wang, W.D. (2010), "Wall and ground movements due to deep excavations in shanghai soft soils", J. Geotech. Geoenviron. Eng., 136(7), 985-994. https://doi.org/10.1061/(ASCE)GT.1943-5606.0000299.
  33. Yang, X.H., Jia, M.C. and Ye, J.Z. (2020), "Method for estimating wall deflection of narrow excavations in clay", Comput. Geotech., 117, 103224. https://doi.org/10.1016/j.compgeo.2019.103224.
  34. Yao, A.J., Yang, X.J. and Dong, L. (2012), "Numerical analysis of the influence of isolation piles in metro tunnel construction of adjacent buildings", International Conference on Structural Computation and Geotechnical Mechanics, Kunming, China, March.
  35. Yu, Y., Sun, H.Y. and Juang, C.H. (2018), "A new model for response of laterally loaded piles in soil-rock mixtures", Comput. Geotech., 104, 237-246. https://doi.org/10.1016/j.compgeo.2018.08.021.
  36. Orazalin, Z.Y., Whittle, A.J. and Olsen, M.B. (2015), "Three-dimensional analyses of excavation support system for the Stata Center basement on the MIT campus", J. Geotech. Geoenviron. Eng., 141(7), 1-14. https://doi.org/10.1061/(ASCE)GT.1943-5606.0001326.
  37. Zhang, W.G., Li, Y.Q., Goh, A.T.C. and Zhang, R.H. (2020), "Numerical study of the performance of jet grout piles for braced excavations in soft clay", Comput. Geotech., 124, 103631. https://doi.org/10.1016/j.compgeo.2020.103631.
  38. Zheng, G., Wang, F.J., Du, Y.M., Diao, Y., Lei, Y.W. and Cheng, X.S. (2018), "The efficiency of the ability of isolation piles to control the deformation of tunnels adjacent to excavations", Int. J. Civil Eng., 16(10B), 1475-1490. https://doi.org/10.1007/s40999-018-0335-7.