Investigation of the failure mechanism and theoretical model of bolt-reinforced shallow tunnel faces with different bolt lengths

Xiao Zhang , Li Yu , Mingnian Wang , Henghong Yang , Ming Lu , Zexing Li , Langzhou Tang

Underground Space ›› 2024, Vol. 16 ›› Issue (3) : 126 -142.

PDF (7608KB)
Underground Space ›› 2024, Vol. 16 ›› Issue (3) :126 -142. DOI: 10.1016/j.undsp.2023.10.002
Research article
research-article

Investigation of the failure mechanism and theoretical model of bolt-reinforced shallow tunnel faces with different bolt lengths

Author information +
History +
PDF (7608KB)

Abstract

Using fiberglass bolts to reinforce a tunnel face is a practical auxiliary technology for ensuring tunnel face stability in soft ground. The reinforcing effect and the economics of this technology are significantly affected by bolt length. However, to date, the failure mechanism of bolt-reinforced tunnel faces with different bolt lengths has rarely been investigated. To reveal the failure mechanism of bolt-reinforced shallow tunnel faces, in this study, the stability of bolt-reinforced tunnel faces with different bolt lengths was investigated by using laboratory tests and numerical simulations, and a simplified theoretical model for practical engineering was proposed. The face support pressure and failure pattern for different bolt lengths during the face collapse process were obtained, and the influence of bolt length on face stability was clearly revealed. More specifically, the results show that face stability increases with increasing bolt length, and the reinforcing effect of face bolts is governed by the shear failure at the soil-grout interface first in the stable zone of the tunnel face and then in the failure zone. Once the bolt length in the stable zone is larger than that in the failure zone, face stability will not be improved with increasing bolt length; thus, this bolt length is referred to as the optimal bolt length Lopt. The Lopt value is slightly larger than the initial failure range (in the unreinforced condition) and can be approximately calculated by Lopt = (1 − 0.0133ϕ)D (ϕ is the friction angle of the soil, and D is the tunnel diameter) in practical engineering. Finally, a simplified theoretical model was established to analyse the stability of reinforced tunnel faces, and the results are in good agreement with both laboratory tests and numerical simulations. The proposed model can be used as an efficient tool for the design of face bolts.

Keywords

L: Failure mechanism / Face bolting / Tunnel face stability / Bolt length / Reinforcing mechanism

Cite this article

Download citation ▾
Xiao Zhang, Li Yu, Mingnian Wang, Henghong Yang, Ming Lu, Zexing Li, Langzhou Tang. Investigation of the failure mechanism and theoretical model of bolt-reinforced shallow tunnel faces with different bolt lengths. Underground Space, 2024, 16(3): 126-142 DOI:10.1016/j.undsp.2023.10.002

登录浏览全文

4963

注册一个新账户 忘记密码

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

The authors are grateful for the support from the National Natural Science Foundation of China (Grant Nos. 52208404 and 52378411).

References

[1]

Al Hallak, R., Garnier, J., & Leca, E. (2000). Experimental study of the stability of a tunnel face reinforced by bolts. In Geotechnical aspects of underground construction on soft ground (pp.65-68).

[2]

Alagha, A. S., & Chapman, D. N. (2019). Numerical modelling of tunnel face stability in homogeneous and layered soft ground. Tunnelling and Underground Space Technology, 94, 103096.

[3]

Anagnostou, G., & Ková ri, K. (1994). The face stability of slurry-shielddriven tunnels. Tunnelling and Underground Space Technology, 9(2), 165-174.

[4]

Anagnostou, G., & Ková ri, K. (1996). Face stability conditions with earth-pressure-balanced shields. Tunnelling and Underground Space Technology, 11(2), 165-173.

[5]

Anagnostou, G., & Perazzelli, P. (2015). Analysis method and design charts for bolt reinforcement of the tunnel face in cohesive-frictional soils. Tunnelling and Underground Space Technology, 47, 162-181.

[6]

Broere, W. (2001). Tunnel face stability and new CPT application. Amsterdam: Delft University.

[7]

Calvello, M., & Taylor, R. N. (1999). Centrifuge modelling of a pile reinforced tunnel heading. In Balkema (Ed.), Proceedings of geotechnical aspect of underground construction in soft rock (pp. 313-318). Rotterdam.

[8]

Chambon, P., & Corte, J. F. (1994). Shallow tunnels in cohesionless soil: Stability of tunnel face. Journal of Geotechnical Engineering, 120(7), 1148-1165.

[9]

Chen, R. P., Li, J., Kong, L. G., & Tang, L. J. (2013). Experimental study on face instability of shield tunnel in sand. Tunnelling and Underground Space Technology, 33, 12-21.

[10]

Chen, R. P., Tang, L. J., Yin, X. S., Chen, Y. M., & Bian, X. C. (2015). An improved 3D wedge-prism model for the face stability analysis of the shield tunnel in cohesionless soils. Acta Geotechnica, 10(5), 683-692.

[11]

Cheng, C., Jia, P., Zhao, W., Ni, P., Bai, Q., Wang, Z., & Lu, B. (2021). Experimental and analytical study of shield tunnel face in dense sand strata considering different longitudinal inclination. Tunnelling and Underground Space Technology, 113, 103950.

[12]

Date, K., Mair, R. J., & Soga, K. (2008). Reinforcing effects of forepoling and facebolts in tunneling. In Proceedings of the 6th international symposium ( IS-Shanghai 2008), pp. 635-641.

[13]

di Prisco, C., Flessati, L., Frigerio, G., Castellanza, R., Caruso, M., Galli, A., & Lunardi, P. (2018). Experimental investigation of the timedependent response of unreinforced and reinforced tunnel faces in cohesive soils. Acta Geotechnica, 13(3), 651-670.

[14]

Di, Q. G., Li, P. F., Zhang, M. J., & Cui, X. P. (2023a). Experimental investigation of face instability for tunnels in sandy cobble strata. Underground Space, 10, 199-216.

[15]

Di, Q. G., Li, P. F., Zhang, M. J., & Cui, X. P. (2023b). Experimental study of face stability for shield tunnels in sandy cobble strata of different densities. Tunnelling and Underground Space Technology, 135, 105029.

[16]

Idinger, G., Aklik, P., Wu, W., & Borja, R. I. (2011). Centrifuge model test on the face stability of shallow tunnel. Acta Geotechnica, 6(2), 105-117.

[17]

Itasca Consulting group. (2011). FLAC3D: User’s manual.

[18]

Kamata, H., & Mashimo, H. (2003). Centrifuge model test of tunnel face reinforcement by bolting. Tunnelling and Underground Space Technology, 18, 205-212.

[19]

Kavvadas, M., & Prountzopoulos, G.(2009). 3D Analyses of tunnel face reinforcement using fibreglass nails. In: Eur: tun 2009 conference. Bochum.

[20]

Kirsch, A. (2010). Experimental investigation of the face stability of shallow tunnels in sand. Acta Geotechnica, 5(1), 43-62.

[21]

Klotoé C. H., & Bourgeois, E. (2016). Finite element simulation of centrifuge tests on bolt-reinforced tunnel face. In 13th International Conference Underground Construction (p. 12p).

[22]

Leca, E., & Dormieux, L. (1990). Upper and lower bound solutions for the face stability of shallow circular tunnels in frictional material. Géotechnique, 40(4), 581-606.

[23]

Li, B., Hong, Y., Gao, B., Qi, T. Y., Wang, Z. Z., & Zhou, J. M. (2015). Numerical parametric study on stability and deformation of tunnel face reinforced with face bolts. Tunnelling and Underground Space Technology, 47, 73-80.

[24]

Li, P., Chen, K., Wang, F., & Li, Z. (2019). An upper-bound analytical model of blow-out for a shallow tunnel in sand considering the partial failure within the face. Tunnelling and Underground Space Technology, 91, 102989.

[25]

Li, P. F., Cui, X. P., Xia, J. W., & Wang, X. Y. (2023). Analytical solutions of limit support pressure and vertical earth pressure on cutting face for tunnels. Underground Space, 12, 65-78.

[26]

Liu, W., Zhao, Y., Shi, P. X., Li, J. Y., & Gan, P. L. (2017). Face stability analysis of shield-driven tunnels shallowly buried in dry sand using 1-g large-scale model tests. Acta Geotechnica, 13, 1-13.

[27]

Lü X. L., Zhou, Y. C., Huang, M. S., & Zeng, S. (2018). Experimental study of the face stability of shield tunnel in sands under seepage condition. Tunnelling and Underground Space Technology, 74, 195-205.

[28]

Lunardi, P. (2008). Design and construction of tunnels: Analysis of Controlled Deformations in Rock and Soils (ADECO-RS). Springer Science & Business Media.

[29]

Mollon, G., Dias, D., & Soubra, A. H. (2011). Rotational failure mechanisms for the face stability analysis of tunnels driven by a pressurized shield. International Journal for Numerical and Analytical Methods in Geomechanics, 35, 1363-1388.

[30]

Ng, C. W. W., & Lee, G. T. K. (2002). A three-dimensional parametric study of the use of soil nails for stabilising tunnel faces. Computers and Geotechnics, 29(8), 673-697.

[31]

Oreste, P. P., & Dias, D. (2012). Stabilisation of the excavation face in shallow tunnels using fibreglass dowels. Rock Mechanics and Rock Engineering, 45(4), 499-517.

[32]

Pan, Q., & Dias, D. (2017). Safety factor assessment of a tunnel face reinforced by horizontal dowels. Engineering Structures, 142, 56-66.

[33]

Paternesi, A., Schweiger, H. F., & Scarpelli, G. (2017). Numerical analyses of stability and deformation behavior of reinforced and unreinforced tunnel faces. Computers and Geotechnics, 88, 256-266.

[34]

Peila, D. (1994). A theoretical study of reinforcement influence on the stability of a tunnel face. Geotechnical and Geological Engineering, 12 (3), 145-168.

[35]

Perazzelli, P., & Anagnostou, G. (2013). Stress analysis of reinforced tunnel faces and comparison with the limit equilibrium method. Tunnelling and Underground Space Technology, 38, 87-98.

[36]

Qian, Z. H., Zou, J. F., Pan, Q. J., & Dias, D. (2019). Safety factor calculations of a tunnel face reinforced with umbrella pipes: A comparison analysis. Engineering Structures, 199, 109639.

[37]

Takano, D., Otani, J., Date, K., Yokot, Y., & Nagatani, H. (2011). Evaluation of reinforcing effect on facebolts for tunneling using x-ray CT and centrifuge model test. Journal of Japan Society of Civil Engineers, Series C (Geosphere Engineering), 67(1), 107-118 (in Japanese).

[38]

Stamhuis, E., & Thielicke, W. (2014). PIVlab-towards user-friendly, affordable and accurate digital particle image velocimetry in MATLAB. Journal of Open Research Software, 2(1), 30.

[39]

Vermeer, P. A., Ruse, N., & Marcher, T. (2002). Tunnel heading stability in drained ground. Felsbau, 20, 8-18.

[40]

Yoo, C. (2002). Finite-element analysis of tunnel face reinforced by longitudinal pipes. Computers and Geotechnics, 29, 73-94.

[41]

Yoo, C., & Shin, H. K. (2003). Deformation behaviour of tunnel face reinforced with longitudinal pipes—Laboratory and numerical investigation. Tunnelling and Underground Space Technology, 18, 303-319.

[42]

Zenti, C. L., Cassani, G., & Sterpi, D. (2012). Technical solutions for soil nails in tunnel face reinforcement and drainage. In Proceedings 38th ITA-AITES World Tunnel Congress WTC.

[43]

Zhang, C. P., Han, K. H., & Zhang, D. L. (2015). Face stability analysis of shallow circular tunnels in cohesive-frictional soils. Tunnelling and Underground Space Technology, 50, 345-357.

[44]

Zhang, M. X., Dai, Z. H., Zhang, X. Q., & Javadi, A. A. (2022). Active failure characteristics and earth pressure distribution around deep buried shield tunnel in dry sand stratum. Tunnelling and Underground Space Technology, 124, 104479.

[45]

Zhang, X., Wang, M. N., Li, J. W., Wang, Z. L., Tong, J. J., & Liu, D. G. (2020a). Safety factor analysis of a tunnel face with an unsupported span in cohesive-frictional soils. Computers and Geotechnics, 117, 103221.

[46]

Zhang, X., Wang, M. N., Lyu, C., Tong, J. J., Yu, L., & Liu, D. G. (2022). Experimental and numerical study on tunnel faces reinforced by horizontal bolts in sandy ground. Tunnelling and Underground Space Technology, 123, 104412.

[47]

Zhang, X., Wang, M. N., Wang, Z. L., Li, J. W., Tong, J. J., & Liu, D. G. (2020b). A limit equilibrium model for the reinforced face stability analysis of a shallow tunnel in cohesive-frictional soils. Tunnelling and Underground Space Technology, 105, 103562.

[48]

Zhang, X., Wang, M. N., Wang, Z. L., Li, J. W., Zhao, S. G., Tong, J. J., & Liu, D. G. (2020c). Stability analysis model for a tunnel face reinforced with bolts and an umbrella arch in cohesive-frictional soils. Computers and Geotechnics, 124, 103635.

[49]

Zhang, Z. Q., Shi, X. Q., Wang, B., & Li, H. Y. (2018). Stability of NATM tunnel faces in soft surrounding rocks. Computers and Geotechnics, 96, 90-102.

[50]

Zou, J. F., Chen, G. H., & Qian, Z. H. (2019). Tunnel face stability in cohesion-frictional soils considering the soil arching effect by improved failure models. Computers and Geotechnics, 106, 1-17.

PDF (7608KB)

37

Accesses

0

Citation

Detail

Sections
Recommended

/