Effects of shield tunnelling parameters on the long-term settlement of piled buildings in soft ground

Ruikun Wang , Gang Zheng , Huayang Lei , Xuesong Cheng , Eng-Choon Leong , Yetao Ji

Underground Space ›› 2026, Vol. 27 ›› Issue (2) : 24 -44.

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Underground Space ›› 2026, Vol. 27 ›› Issue (2) :24 -44. DOI: 10.1016/j.undsp.2025.10.003
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Effects of shield tunnelling parameters on the long-term settlement of piled buildings in soft ground
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Abstract

This study investigated the long-term settlement behaviour of piled buildings induced by shield tunnelling in soft ground conditions within urban environments. By integrating a detailed case study with advanced numerical modelling techniques, this study provided a nuanced understanding of the interactions between tunnel construction and existing pile foundations. Central to the investigation is the role of soil consolidation, which significantly contributes to the settlement of piled buildings. To address this, this study emphasizes the critical need for the precise calibration of tunnelling parameters such as face pressure and grouting pressures. These parameters are meticulously controlled to mitigate the adverse effects on nearby piled buildings, ensuring their stability and integrity. It is established that an optimal face pressure, set at 90% of the lateral earth pressure, consistently minimizes the settlement of piled buildings, primarily due to the minimal reduction in the pile toe resistance observed near the tunnel. Similarly, the ideal grouting pressure was identified to be within the range of 120%–160% of the vertical earth pressure, with the smallest building settlement and decrease in pile toe resistance observed at a grouting pressure of 150% of the overburden pressure. This finding elucidates the load transfer mechanism within piled buildings. This study further demonstrated that the settlement induced by the second tunnel excavation is smaller than that caused by the first tunnel excavation owing to the sheltering effects of the adjacent first tunnel and pile foundations. During the consolidation phase following tunnel excavation, the settlement caused by the second tunnel is smaller than that caused by the first tunnel, which is attributed to the dissipation of the negative excess pore pressure around the first tunnel, leading to soil volume expansion. These insights not only validate the effectiveness of the numerical model but also contribute significantly to the field of geotechnical engineering by providing actionable guidelines for future tunnelling projects.

Keywords

Long-term settlement behaviour / Tunnelling parameters / Load transfer mechanism / Piled building

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Ruikun Wang, Gang Zheng, Huayang Lei, Xuesong Cheng, Eng-Choon Leong, Yetao Ji. Effects of shield tunnelling parameters on the long-term settlement of piled buildings in soft ground. Underground Space, 2026, 27 (2) : 24-44 DOI:10.1016/j.undsp.2025.10.003

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References

[1]

Boonyarak, T., Phisitkul, K., Ng, C. W. W., Teparaksa, W ., & Aye, Z. Z. (2014). Observed ground and pile group responses due to tunneling in Bangkok stiff clay. Canadian Geotechnical Journal, 51(5), 479-495.

[2]

Cao, L., Chen, X., Lin, X. T., Su, D., Fang, H., & Lu, D. (2023). Analytical solutions for the restraint effect of isolation piles against tunneling-induced vertical ground displacements. Journal of Rock Mechanics and Geotechnical Engineering, 15(10), 2582-2596.

[3]

Chen, R., Yin, X., Tang, L., & Chen, Y. (2018). Centrifugal model tests on face failure of earth pressure balance shield induced by steady state seepage in saturated sandy silt ground. Tunnelling and Underground Space Technology, 81, 315-325.

[4]

Cheng, C., Dasari, G., Chow, Y., & Leung, C. (2007). Finite element analysis of tunnel-soil-pile interaction using displacement controlled model. Tunnelling and Underground Space Technology, 22(4), 450-466.

[5]

Chore, H., Ingle, R., & Sawant, V. (2010). Building frame-pile foundation-soil interaction analysis: A parametric study. Interaction and Multiscale Mechanics, 3(1), 55-79.

[6]

Franza, A., & Marshall, A. M. (2018). Centrifuge modeling study of the response of piled structures to tunneling. Journal of Geotechnical and Geoenvironmental Engineering, 144(2), 04017109.

[7]

Franzius, J., & Potts, D . (2005). Influence of mesh geometry on three-dimensional finite-element analysis of tunnel excavation. International Journal of Geomechanics, 5(3), 256-266.

[8]

Gokuldas, S., Banerjee, S., & Nimbalkar, S. S. (2020). Effects of tunneling-induced ground movements on stability of piled raft foundation: Three-dimensional finite-element approach. International Journal of Geomechanics, 20(8), 04020104.

[9]

Hong, Y., Soomro, M. A., & Ng, C. W. W. (2015a). Settlement and load transfer mechanism of pile group due to side-by-side twin tunnelling. Computers and Geotechnics, 64, 105-119.

[10]

Hong, Y., Soomro, M. A., Ng, C. W. W., Wang, L., Yan, J., & Li, B. (2015b). Tunnelling under pile groups and rafts: Numerical parametric study on tension effects. Computers and Geotechnics, 68, 54-65.

[11]

Huang, F., Wang, Z., Zhang, M., & Li, S. (2022). Failure mechanism of the bearing stratum at the end of a pile induced by shield tunnel excavation beneath a piled building. KSCE Journal of Civil Engineering, 26(2), 942-954.

[12]

Jeon, Y. J., Jeon, S. C., Jeon, S. J., & Lee, C. J. (2020). Study on the behaviour of pre-existing single piles to adjacent shield tunnelling by considering the changes in the tunnel face pressures and the locations of the pile tips. Geomechanics and Engineering, 21(2), 187-200.

[13]

Jin, H., Yuan, D., Zhou, S., & Zhao, D. (2022). Short-term and long-term displacement of surface and shield tunnel in soft soil: Field observations and numerical modeling. Applied Sciences, 12(7), 3564.

[14]

Jongpradist, P., Kaewsri, T., Sawatparnich, A., Suwansawat, S., Youwai, S., Kongkitkul, W., & Sunitsakul, J. (2013). Development of tunneling influence zones for adjacent pile foundations by numerical analyses. Tunnelling and Underground Space Technology, 34, 96-109.

[15]

Jóźefiak, K., Zbiciak, A., Maślakowski, M., & Piotrowski, T. (2015). Numerical modelling and bearing capacity analysis of pile foundation. Procedia Engineering, 111, 356-363.

[16]

Komiya, K., Takiyama, K., & Akagi, H. (2006). Settlement behaviour of a shield tunnel constructed in subsiding reclaimed area. In Proceedings of the 5th International Conference on Geotechnical Aspects of Underground Construction in Soft Ground, the Netherlands (pp. 239-244).

[17]

Lee, C. (2012). Numerical analysis of the interface shear transfer mechanism of a single pile to tunnelling in weathered residual soil. Computers and Geotechnics, 42, 193-203.

[18]

Liu, Y. L. (2014). Numerical analysis of the deformation law of deep foundation pit of subway station by FLAC3D. Advanced Materials Research, 915, 62-67.

[19]

Lu, H., Shi, J., Ng, C. W. W., & Lv, Y. (2020). Three-dimensional centrifuge modeling of the influence of side-by-side twin tunneling on a piled raft. Tunnelling and Underground Space Technology, 103, 103486.

[20]

Marshall, A. M. (2012). Tunnel-pile interaction analysis using cavity expansion methods. Journal of Geotechnical and Geoenvironmental Engineering, 138(10), 1237-1246.

[21]

Meng, F. Y., Chen, R. P., & Kang, X. (2018). Effects of tunneling-induced soil disturbance on the post-construction settlement in structured soft soils. Tunnelling and Underground Space Technology, 80, 53-63.

[22]

Ng, C. W. W., Hong, Y., & Soomro, M. A. (2015). Effects of piggyback twin tunnelling on a pile group: 3D centrifuge tests and numerical modelling. Géotechnique, 65(1), 38-51.

[23]

Ng, C. W. W., Liu, G., & Li, Q. (2013a). Investigation of the long-term tunnel settlement mechanisms of the first metro line in Shanghai. Canadian Geotechnical Journal, 50(6), 674-684.

[24]

Ng, C. W. W., Lu, H., & Peng, S. (2013b). Three-dimensional centrifuge modelling of the effects of twin tunnelling on an existing pile. Tunnelling and Underground Space Technology, 35, 189-199.

[25]

Pang, C.H. (2006). The effects of tunnel construction on nearby pile foundation [Doctoral dissertation, National University of Singapore].

[26]

Randolph, M. F. (2003). Science and empiricism in pile foundation design. Géotechnique, 53(10), 847-875.

[27]

Selemetas, D. (2006). Response of full-scale piles and piled structures to tunnelling [Doctoral dissertation, Univeristy of Cambridge].

[28]

Selemetas, D., & Standing, J . (2018). Response of full-scale piles to EPBM tunnelling in London Clay. In Tunnelling in the Urban Environment: Géotechnique Symposium in Print 2017 (pp. 123-136). ICE Publishing.

[29]

Shirlaw, J . (1995). Observed and calculated pore pressures and deformations induced by an earth balance shield: Discussion. Canadian Geotechnical Journal, 32(1), 181-189.

[30]

Soomro, M. A. (2021). 3D finite element analysis of effects of twin stacked tunnels at different depths and with different construction sequence on a piled raft. Tunnelling and Underground Space Technology, 109, 103759.

[31]

Soomro, M. A., Hong, Y., Ng, C. W. W., Lu, H., & Peng, S. (2015). Load transfer mechanism in pile group due to single tunnel advancement in stiff clay. Tunnelling and Underground Space Technology, 45, 63-72.

[32]

Soomro, M. A., Kumar, M., Mangi, N., Mangnejo, D. A., & Cu, Z. D. (2022). Parametric study of twin tunneling effects on piled foundations in stiff clay: 3D finite-element approach. International Journal of Geomechanics, 22(6), 04022079.

[33]

Soomro, M. A., Kumar, M., Xiong, H., Mangnejo, D. A., & Mangi, N. (2020). Investigation of effects of different construction sequences on settlement and load transfer mechanism of single pile due to twin stacked tunnelling. Tunnelling and Underground Space Technology, 96, 103171.

[34]

Soomro, M. A., Ng, C. W. W., Liu, K., & Memon, N. A. (2017). Pile responses to side-by-side twin tunnelling in stiff clay: Effects of different tunnel depths relative to pile. Computers and Geotechnics, 84, 101-116.

[35]

Soomro, M. A., Ng, C. W. W., Memon, N. A., & Bhanbhro, R. (2018). Lateral behaviour of a pile group due to side-by-side twin tunnelling in dry sand: 3D centrifuge tests and numerical modelling. Computers and Geotechnics, 101, 48-64.

[36]

Sun, W., Lin, E., Yang, Z., Ni, P., & Chen, Y. (2024). Damage analysis of buried pipelines subjected to side-by-side twin tunneling based on centrifuge and numerical modeling. Tunnelling and Underground Space Technology, 146, 105647.

[37]

Zheng, G., Fan, Q., Zhang, T., & Zhang, Q. (2022). Numerical study of the Soil-Tunnel and Tunnel-Tunnel interactions of EPBM overlapping tunnels constructed in soft ground. Tunnelling and Underground Space Technology, 124, 104490.

[38]

Zheng, G., Lu, P., & Diao, Y. (2015a). Advance speed-based parametric study of greenfield deformation induced by EPBM tunneling in soft ground. Computers and Geotechnics, 65, 220-232.

[39]

Zheng, G., Wang, R., Lei, H., Zhang, T., & Fan, Q. (2023). Load-transfer-associated settlements of a piled building during shield tunnelling in soft ground. Tunnelling and Underground Space Technology, 133, 104964.

[40]

Zheng, G., Zhang, T., & Diao, Y. (2015b). Mechanism and countermeasures of preceding tunnel distortion induced by succeeding EPBS tunnelling in close proximity. Computers and Geotechnics, 66, 53-65.

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