Experimental investigation on damage development and failure mechanism of shield tunnel lining under internal blast considering stratum-structure interaction

Chao Liu , Guanhua Zhao , Yijie Liu , Jie Cui , Hai Liu , Shunhang Zhu

Underground Space ›› 2025, Vol. 21 ›› Issue (2) : 81 -99.

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Underground Space ›› 2025, Vol. 21 ›› Issue (2) :81 -99. DOI: 10.1016/j.undsp.2024.07.004
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Experimental investigation on damage development and failure mechanism of shield tunnel lining under internal blast considering stratum-structure interaction

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Abstract

With the expansion of international terrorism and the potential threat of attacks against civil infrastructure, the dynamic response and failure modes of underground tunnels under explosive loads have become a prominent research topic. The high cost and inherent danger associated with explosion experiments have limited current research on tunnel internal explosions, particularly in the context of scaled model tests of shield tunnels. This study presents a series of scaled model tests under 1g-condition simulating internal blast events within a shield tunnel based on the prototype of the Shantou Bay Tunnel, considering the influences of surrounding stratum and equivalent explosive yield. Three different TNT explosive yields are considered in the model tests, namely 0.2, 0.4, and 1.0 kg. The model tests focus on the damage behavior and collapse modes of the shield tunnel lining under internal explosive loads. The model tests reveal that the shield tunnel is prone to damage at the joints of the tunnel crown and shoulder when subjected to internal explosive loads, with the upper half of the tunnel lining experiencing segment collapse, while the lower half remains largely undamaged. As the TNT equivalent increases, the damage area at the tunnel joints expands, and the number of segment failures in the upper half of the tunnel rises, transitioning from a damaged state to a collapsed state. The influence of “stratum-structure” interaction is investigated by comparing two models, one with overburden soil and the other positioned at the ground surface. The model tests reveal that the presence of soil pressure and confinement can significantly enhance the tunnel resistance to internal blast loads. Based on the observation of the model tests, five different damage modes of segment joints under internal explosion are proposed in this study.

Keywords

Shield tunnel / Internal explosion / Scaled model test / Lining damage / Tunnel collapse

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Chao Liu, Guanhua Zhao, Yijie Liu, Jie Cui, Hai Liu, Shunhang Zhu. Experimental investigation on damage development and failure mechanism of shield tunnel lining under internal blast considering stratum-structure interaction. Underground Space, 2025, 21(2): 81-99 DOI:10.1016/j.undsp.2024.07.004

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Data availability

The data that support the findings of this study are available from the corresponding author upon reasonable request.

CRediT authorship contribution statement

Chao Liu: Writing - review & editing, Writing - original draft, Methodology, Investigation, Funding acquisition, Formal analysis, Conceptualization. Guanhua Zhao: Writing - original draft, Visualization, Validation, Investigation. Yijie Liu: Resources. Jie Cui: Writing - review & editing, Supervision. Hai Liu: Writing - review & editing, Supervision. Shunhang Zhu: Visualization.

Declaration of competing interest

The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.

Acknowledgement

This research was conducted with the funding from the National Natural Foundation of China (Grant Nos. 52178385 and 52020105002).

References

[1]

Baker, W. E., Westine, P. S., & Dodge, F. T. (1973). Similarity Methods in Engineering Dynamics: Theory and Practice of Scale Modeling. Elsevier.

[2]

Chen, H. L., Xie, W., Jiang, M. R., Wang, P., Zhou, J. N., Fan, H. L.,... Jin, F. N. (2015). Blast-loaded behaviors of severely damaged buried arch repaired by anchored CFRP strips. Composite Structures, 122, 92-103.

[3]

Chen, H. L., Zhou, J. N., Fan, H. L., Jin, F. N., Xu, Y., Qiu, Y. Y., Wang, P., & Xie, W. (2014). Dynamic responses of buried arch structure subjected to subsurface localized impulsive loading: Experimental study. International Journal of Impact Engineering, 65, 89-101.

[4]

Cheng, R. S., Chen, W. S., Hao, H., & Li, J. D. (2021). A state-of-the-art review of road tunnel subjected to blast loads. Tunnelling and Underground Space Technology, 112, 103911.

[5]

Drover, C., & Villaescusa, E. (2019). A comparison of seismic response to conventional and face destress blasting during deep tunnel development. Journal of Rock Mechanics and Geotechnical Engineering, 11(5), 965-978.

[6]

Han, J. S., Pan, J. L., Ma, X. M., & Cai, J. M. (2022). Sensing performance of engineered cementitious composites in different application forms. Construction and Building Materials, 355, 129223.

[7]

Ji, Y. G., Wang, M. Y., Li, J., Deng, S. X., Li, Z. H., Xu, T. H., & Gao, F. (2022). A laboratory method to simulate seismic waves induced by underground explosions. Journal of Rock Mechanics and Geotechnical Engineering, 14(5), 1514-1530.

[8]

Jiang, N., Gao, T., Zhou, C. B., & Luo, X. D. (2018). Effect of excavation blasting vibration on adjacent buried gas pipeline in a metro tunnel. Tunnelling and Underground Space Technology, 81, 590-601.

[9]

Kaushik, A., Patnaik, G., Rajput, A., & Prakash, G. (2024). In Numerical Analysis of Underground Tunnel System with GFRP Shield Against Internal Explosion (pp.151-167). Springer.

[10]

Keskin, _I., Yadgar, Ahmed, M., Ramadhan, Taher, N., Gör, M., &Zrar Abdulsamad, B. ( 2022). An evaluation on effects of surface explosion on underground tunnel; availability of ABAQUS Finite element method. Tunnelling and Underground Space Technology, 120, 104306.

[11]

Kiger, S. A., Dallriva, F. D., & Hall, R. L. (1989). Dynamic Skin-Friction Effects on Buried Arches. Journal of Structural Engineering, 115(7), 1768-1781.

[12]

Koneshwaran, S. (2014). Blast response and sensitivity analysis of segmental tunnel. [Doctoral dissertation, Queensland University of Technology, Australia].

[13]

Koneshwaran, S., Thambiratnam, D. P., & Gallage, C. (2015). Response of segmented bored transit tunnels to surface blast. Advances in Engineering Software, 89, 77-89.

[14]

Kristoffersen, M., Hauge, K. O., Valsamos, G., & Børvik, T. (2018). Blast loading of concrete pipes using spherical centrically placed C-4 charges. EPJ Web of Conferences, 183, 01057.

[15]

Kristoffersen, M., Minoretti, A., & Børvik, T. (2019). On the internal blast loading of submerged floating tunnels in concrete with circular and rectangular cross-sections. Engineering Failure Analysis, 103, 462-480.

[16]

Krone, E. (2018). Internal Blast Loading of Submerged Floating Tunnels in Concrete. [Master’s Thesis, NTNU, Norway].

[17]

Li, X. H., Zhu, Z. M., Wang, M., Shu, Y., Deng, S., & Xiao, D. J. (2022). Influence of blasting load directions on tunnel stability in fractured rock mass. Journal of Rock Mechanics and Geotechnical Engineering, 14 (2), 346-365.

[18]

Liang, Q. G., Li, J., Li, D. W., & Ou, E. F. (2012). Effect of blast-induced vibration from new railway tunnel on existing adjacent railway tunnel in Xinjiang, China. Rock Mechanics and Rock Engineering, 46, 19-39.

[19]

Liu, X., Dong, Z. B., Bai, Y., & Zhu, Y. H. (2017). Investigation of the structural effect induced by stagger joints in segmental tunnel linings: First results from full-scale ring tests. Tunnelling and Underground Space Technology, 66, 1-18.

[20]

Ministry of Housing and Urban-Rural Development of China (MOHURD), & General Administration of Quality Supervision, Inspection and Quarantine of the People’s Republic of China (AQSIQ). (2011). GB 50164—2011: Standard for quality control of concrete. China Architecture & Building Press, Beijing, China (in Chinese).

[21]

Mobaraki, B., & Vaghefi, M. (2016). Effect of the soil type on the dynamic response of a tunnel under surface detonation. Combustion, Explosion, and Shock Waves, 52, 363-370.

[22]

Patnaik, G., Kaushik, A., Singh, M. J., Rajput, A., Prakash, G., & Borana, L. (2022). Damage prediction of underground pipelines subjected to blast loading. Arabian Journal for Science and Engineering, 47, 13559-13578.

[23]

Patnaik, G., & Rajput, A. (2023). Safety assessment of underground steel pipelines with CFRP protection against subsurface blast loading. Structures, 54, 1541-1559.

[24]

Prochazka, P., & Jandeková D. (2020). Effect of explosion source location on tunnel damage. International Journal of Protective Structures, 11, 448-467.

[25]

Rahimi, B., Sharifzadeh, M., & Feng, X. T. (2020). Ground behaviour analysis, support system design and construction strategies in deep hard rock mining - Justified in Western Australian’s mines. Journal of Rock Mechanics and Geotechnical Engineering, 12(1), 1-20.

[26]

Rajput, A., Kaushik, A., Iqbal, M. A., & Gupta, N. K. (2023). Non-linear FE investigation of subsurface tunnel with gfrp protection against internal blast. International Journal of Impact Engineering, 172, 104423.

[27]

Slawson, T. R. (1984). Dynamic shear failure of shallow-buried flat-roofed reinforced concrete structures subjected to blast loading. Final report. Report No. AD-A-145974/2/XAD, Army Engineer Waterways Experiment Station, Vicksburg, MS (USA).

[28]

Smith, J. L., Betz, J. F., & Baird, G. T. (1986). KACHINA Test Series: Dynamic Arch Test Three (DAT-3) Analysis Report. Report No. ADA- 171212/4/XAB, Air Force Weapons Laboratory, Kirtland AFB, NM (USA).

[29]

Tiwari, R., Chakraborty, T., & Matsagar, V. (2018). Analysis of curved tunnels in soil subjected to internal blast loading. Acta Geotechnica, 15, 509-528.

[30]

Tran, P., Wu, C. L., Saleh, M., Bortolan Neto, L., Nguyen-Xuan, H., & Ferreira, A. J. M. (2021). Composite structures subjected to underwater explosive loadings: A comprehensive review. Composite Structures, 263, 113684.

[31]

Wu, H. N., Chen, S., Chen, R. P., Cheng, H. Z., & Feng, D. L. (2022). Deformation behaviors and failure mechanism of segmental RC lining under unloading condition. Tunnelling and Underground Space Technology, 130, 104687.

[32]

Xu, L. F., Chen, L., Fang, Q., & Dong, Y. L. (2022). Blast resistance of a folded arch cross-section immersed tunnel subjected to internal explosion. Tunnelling and Underground Space Technology, 125, 104521.

[33]

Yang, F., Feng, W. H., Liu, F., Jing, L., Yuan, B., & Chen, D. (2019). Experimental and numerical study of rubber concrete slabs with steel reinforcement under close-in blast loading. Construction and Building Materials, 198, 423-436.

[34]

Yang, G. D., Wang, G. H., Lu, W. B., Zhao, X. H., Yan, P., & Chen, M. (2018). Numerical modeling of surface explosion effects on shallowburied box culvert behavior during the water diversion. Thin-Walled Structures, 133, 153-168.

[35]

Zhang, Y. J., Huang, H. W., Zhang, D. M., & Ayyub, B. M. (2022). Deformation recoverability of longitudinal joints in segmental tunnel linings: An experimental study. Tunnelling and Underground Space Technology, 124, 104475.

[36]

Zhao, D. B., Huang, Y. T., Chen, X. S., Han, K. H., Chen, C., Zhao, X. F., & Chen, W. T. (2023). Numerical investigations on dynamic responses of subway segmental tunnel lining structures under internal blasts. Tunnelling and Underground Space Technology, 135, 105058.

[37]

Zhao, Y. T., Chu, C., & Yi, Y. J. (2016). Study on an engineering measure to improve internal explosion resistance capacity of segmental tunnel lining structures. Journal of Vibroengineering, 18(5), 2997-3009.

[38]

Zhou, L. Y., Li, X. J., Yan, Q. S., & Li, S. T. (2023). Blast test and probabilistic vulnerability assessment of a shallow buried RC tunnel considering uncertainty. International Journal of Impact Engineering, 180, 104717.

[39]

Zhou, Q., He, H. G., Liu, S. F., Chen, X. S., Tang, Z. X., Liu, Y., Qiu, Z. Y., Li, S. S., Wang, H., Zhou, Y. Z., Zhou, J. N., Fan, H. L., & Jin, F. N. (2021). Blast resistance evaluation of urban utility tunnel reinforced with BFRP bars. Defence Technology, 17(2), 512-530.

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