Combined active and passive support technology and its application for deformation control in large-section weakly cemented tunnel

Qing Ma , Wei Zhang , Xiaoli Liu , Weiqiang Xie , Ruosong Wang , Jinpeng Zhao

Underground Space ›› 2026, Vol. 27 ›› Issue (2) : 1 -23.

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Underground Space ›› 2026, Vol. 27 ›› Issue (2) :1 -23. DOI: 10.1016/j.undsp.2025.10.007
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Combined active and passive support technology and its application for deformation control in large-section weakly cemented tunnel
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Abstract

The development of large cross-section tunnels is an inevitable trend driven by the intensification of coal mining activities and advancements in mining equipment technology. However, the disturbance stress exerted by adjacent caverns has a more pronounced impact on weakly cemented rock strata in the vicinity of neighboring tunnels. To mitigate deformation in weakly cemented tunnels, grouting and the installation of long anchor cables were employed to reinforce the self-supporting capacity of the surrounding rock, thereby establishing an active support layer. Additionally, U-shaped steel frames combined with the subsequent application of flexible filling materials were utilized to aid the surrounding rock in mobilizing its self-supporting capacity, which resulted in the formation of a passive support layer. A layered collaborative control methodology integrating both active and passive support mechanisms was developed and implemented in engineering practice. The findings demonstrate that the vertical stress was alleviated after cavern excavation and was predominantly transferred toward the adjacent tunnel, with the influence zone extending approximately 7 to 12 times the tunnel height. Conversely, the horizontal stress is primarily dispersed laterally, affecting a region approximately 3 to 6 times the tunnel width. Following the infilling of pebbles between the U-shaped steel frame and the adjacent rock mass, the maximum compressive stress experienced by the U-shaped steel frame decreased by 50%. Additionally, the spatial extent of the maximum axial force was reduced by 65%, whereas the stresses within the rock bolts and cable bolts increased by 30% and 40%, respectively. Grouting reinforcement contributed to bonding and compaction effects on the delamination and fracturing of the roof strata, with the grout predominantly distributed within a range of 1.5 to 5 m from the central region of the roof. The research outcomes presented in this paper can provide valuable reference for a large-section weakly cemented tunnel.

Keywords

Weakly cemented rock / Large cross-section caverns / Large deformation tunnel / Active-passive collaborative control / Grouting reinforcement

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Qing Ma, Wei Zhang, Xiaoli Liu, Weiqiang Xie, Ruosong Wang, Jinpeng Zhao. Combined active and passive support technology and its application for deformation control in large-section weakly cemented tunnel. Underground Space, 2026, 27 (2) : 1-23 DOI:10.1016/j.undsp.2025.10.007

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References

[1]

Afrasiabian, B., & Eftekhari, M . (2022). Prediction of mode I fracture toughness of rock using linear multiple regression and gene expression programming. Journal of Rock Mechanics and Geotechnical Engineering, 14(5), 1421-1432.

[2]

Agheshlui, H., Sedaghat, M. H., & Azizmohammadi, K. S. (2019). A comparative study of stress influence on fracture apertures in fragmented rocks. Journal of Rock Mechanics and Geotechnical Engineering, 11(1), 38-45.

[3]

Bai, C. H., Xue, Y. G., Qin, D. H., Su, M. X., Ma, X. M., & Liu, H. T. (2021). Analysis of factors affecting the deformation of soft rock tunnels by data envelopment analysis and a risk assessment model. Tunnelling and Underground Space Technology, 116, 104111.

[4]

Cai, X., Zhou, Z. L., Tan, L. H., Zang, H. Z., & Song, Z. T. (2020). Water saturation effects on thermal infrared radiation features of rock materials during deformation and fracturing. Rock Mechanics and Rock Engineering, 53(11), 4839-4856.

[5]

Cao, K. W., Ma, L. Q., Wu, Y., Khan, N. M., Spearing, A. J., Hussain, S., & Yang, J. (2021). Cyclic fatigue characteristics of rock failure using infrared radiation as precursor to violent failure: Experimental insights from loading and unloading response. Fatigue & Fracture of Engineering Materials & Structures, 44(2), 584-594.

[6]

Chen, D. H., Chen, H. E., Zhang, W., Lou, J. Q., & Bo, S. (2022). An analytical solution of equivalent elastic modulus considering confining stress and its variables sensitivity analysis for fractured rock masses. Journal of Rock Mechanics and Geotechnical Engineering, 14(3), 825-836.

[7]

Chen, F. Y., Wang, L., & Zhang, W. G. (2019). Reliability assessment on stability of tunnelling perpendicularly beneath an existing tunnel considering spatial variabilities of rock mass properties. Tunnelling and Underground Space Technology, 88, 276-289.

[8]

Dai, L. P., Zhao, X., Pan, Y. S., Luo, H., Gao, Y. N., Wang, A. W., Ding, L. L., & Li, P. (2025). Microseismic criterion for dynamic risk assessment and warning of roadway rockburst induced by coal mine seismicity. Engineering Geology, 357, 108324.

[9]

Feng, G. L., Chen, B. R., Xiao, Y. X., & Zhang, W. (2022). Microseismic characteristics of rockburst development in deep TBM tunnels with alternating soft-hard strata and application to rockburst warning: A case study of the Neelum-Jhelum hydropower project. Tunnelling and Underground Space Technology, 122, 104398.

[10]

Han, Z. Y., Li, D. Y., & Li, X. B. (2022). Dynamic mechanical properties and wave propagation of composite rock-mortar specimens based on SHPB tests. International Journal of Mining Science and Technology, 32(4), 793-806.

[11]

Hoang, N. Q., Kim, S. Y., & Lee, J. S. (2022). Compressibility, stiffness and electrical resistivity characteristics of sand-diatom mixtures. Géotechnique, 72(12), 1068-1081.

[12]

Hu, S. C., Zhang, C. X., & Ru, W. K. (2023). Creep properties and energy evolution characteristics of weakly cemented rock under step loading. International Journal of Rock Mechanics and Mining Sciences, 170, 105428.

[13]

Le, T., & Airey, D. (2023). Mechanical behaviour of a weakly structured soil at low confining stress. Géotechnique, 73(2), 128-142.

[14]

Li, G., Ma, F. S., Guo, J., Zhao, H. J., & Liu, G. (2020). Study on deformation failure mechanism and support technology of deep soft rock roadway. Engineering Geology, 264, 105262.

[15]

Liu, X. R., Han, Y. F., Li, D. L., Tu, Y. L., Deng, Z. Y., Yu, C. T., & Wu, X. C. (2019). Anti-pull mechanisms and weak interlayer parameter sensitivity analysis of tunnel-type anchorages in soft rock with underlying weak interlayers. Engineering Geology, 253, 123-136.

[16]

Ma, Q., Liu, X. L., Tan, Y. L., Wang, Y. R., Wang, R. S., Wang, E. Z., Liu, X. S., Zhao, Z. H., Ren, D. R., Xie, W. Q., Qian, R. P., & Hu, N. (2023). Monitoring and evaluation of disaster risk caused by linkage failure and instability of residual coal pillar and rock strata in multi-coal seam mining. Geohazard Mechanics, 1(4), 297-307.

[17]

Ma, Q., Tan, Y. L., Liu, X. S., Gu, Q. H., & Li, X. B. (2020). Effect of coal thicknesses on energy evolution characteristics of roof rock-coal-floor rock sandwich composite structure and its damage constitutive model. Composites Part B-Engineering, 198(1), 108086.

[18]

Ma, Q., Zhao, Z. H., Gao, X. J., Chen, S. J., & Tan, Y. L. (2019). Numerical survey on the destabilization mechanism of weakly cemented soft rock roadway considering interlayer effect. Geotechnical and Geological Engineering, 37(11), 95-105.

[19]

Meng, N. K., Bai, J. B., & Chungsik, Y. (2023). Failure mechanism and control technology of deep soft-rock roadways: Numerical simulation and field study. Underground Space, 12, 1-17.

[20]

Mezza, S., Vazquez, P., Jemai, M. B., & Fronteau, G. (2022). Infrared thermography for the investigation of physical-chemical properties and thermal durability of Tunisian limestone rocks. Construction and Building Materials, 339, 127470.

[21]

Miao, S. Y., Cheng, G. W., Zhang, H. J., Huang, Y. Q., Gu, N., Zha, H. S., & Gao, J. (2023). Efficiently identifying coalbed methane enrichment areas by detecting and locating low-frequency signals in the coal mine. Geohazard Mechanics, 1(1), 86-93.

[22]

Mineo, S., & Pappalardo, G. (2019). InfraRed thermography presented as an innovative and non-destructive solution to quantify rock porosity in laboratory. International Journal of Rock Mechanics and Mining Sciences, 115, 99-110.

[23]

Mineo, S., Pappalardo, G., Casciano, C. I., Stefano, A. D., Catalano, S., & Gagliano, M. (2021). Insights on the Capo d’Orlando flysch (NE Sicily) by means of geomechanics and sedimentology. Italian Journal of Geosciences, 138(3), 404-417.

[24]

Ru, W. K., Hu, S. C., Zhou, A. H., Luo, P. K., Cong, H., Zhang, C. X., & Zhou, X. D. (2023). Study on creep characteristics and nonlinear fractional order damage constitutive model of weakly cemented soft rock. Rock Mechanics and Rock Engineering, 56(11), 1-22.

[25]

Sivakumar, V., Moorhead, M. C., Donohue, S., Serridge, C., Tripathy, S., Mckinley, J., & Doherty, C. (2021). The initial, primary and secondary consolidation response of soft clay reinforced with a granular column under isolated loading. Géotechnique, 71(6), 467-479.

[26]

Swan, G., & Li, C. C. (2023). Hardrock burst mechanisms and management strategies. Geohazard Mechanics, 1(1), 18-31.

[27]

Tan, Z., Li, S., Yang, Y., & Wang, J. (2022). Large deformation characteristics and controlling measures of steeply inclined and layered soft rock of tunnels in plate suture zones. Engineering Failure Analysis, 131(5), 105831.

[28]

Tao, K., Dang, W. A., & Li, Y. C. (2023). Frictional sliding of infilled planar granite fracture under oscillating normal stress. International Journal of Mining Science and Technology, 33(6), 687-701.

[29]

Vazaios, I., Vlachopoulos, N., & Diederichs, M. S. (2019). Assessing fracturing mechanisms and evolution of excavation damaged zone of tunnels in interlocked rock masses at high stresses using a finite-discrete element approach. Journal of Rock Mechanics and Geotechnical Engineering, 11(4), 701-722.

[30]

Wang, G., Jiang, C., Shen, J., Han, D., & Qin, X. (2019). Deformation and water transport behaviors study of heterogenous coal using ct-based 3d simulation. International Journal of Coal Geology, 211, 103204.

[31]

Watanabe, Y., & Tanaka, Y. (2023). Swelling pressure of compacted bentonite acting on constraining material with deformability. Géotechnique, 73(2), 95-104.

[32]

Wei, M. D., Dai, F., Liu, Y., & Jiang, R. C. (2023). A fracture model for assessing tensile mode crack growth resistance of rocks. Journal of Rock Mechanics and Geotechnical Engineering, 15(2), 395-411.

[33]

Wu, Q., Liu, Y. X., Tang, H. M., Kang, J. T., Wang, L. Q., Li, C. D., Wang, D., & Liu, Z. Q. (2023). Experimental study of the influence of wetting and drying cycles on the strength of intact rock samples from a red stratum in the three Gorges Reservoir area. Engineering Geology, 314, 107013.

[34]

Xie, H. P., Lu, J., Li, M. H., & Gao, M. Z. (2022). Experimental study on the mechanical and failure behaviors of deep rock subjected to true triaxial stress: A review. International Journal of Mining Science and Technology, 32(5), 915-950.

[35]

Yang, S. Q., Chen, M., Fang, G., Wang, Y. C., Meng, B., Li, Y. G., & Jing, H. W. (2018). Physical experiment and numerical modelling of tunnel excavation in slanted upper-soft and lower-hard strata. Tunnelling and Underground Space Technology, 82, 248-264.

[36]

Yang, S. Q., Tao, Y., Xu, P., & Chen, M. (2019). Large-scale model experiment and numerical simulation on convergence deformation of tunnel excavating in composite strata. Tunnelling and Underground Space Technology, 94, 103133.

[37]

Zhang, C. Q., Cui, G. J., Deng, L., Zhou, H., Lu, J. J., & Dai, F. (2020a). Laboratory investigation on shear behaviors of bolt-grout interface subjected to constant normal stiffness. Rock Mechanics and Rock Engineering, 53, 1333-1347.

[38]

Zhang, W., Guo, W. Y., & Wang, Z. Q. (2022). Influence of lateral pressure on mechanical behavior of different rock types under biaxial compression. Journal of Central South University, 29(11), 3695-3705.

[39]

Zhang, W., Xing, M. L., & Guo, W. Y. (2023). Study on fracture characteristics of anchored sandstone with precast crack based on double K criterion. International Journal of Solids and Structures, 275, 112296.

[40]

Zhang, W. G., Somerville, I., Paneiro, G., Nong, X. Z., Chwala, M., & Yang, W. Y. (2024a). Design and construction of tunnels and tunneling: Understanding the importance of geological conditions, landslide susceptibility and risk assessment. Geological Journal, 59(9), 2365-2370.

[41]

Zhang, W. G., Tang, X. C., Yang, W. Y., Jiang, J. Q., Zhang, H. T., & Li, P. X. (2024b). Review of tunnels and tunneling in unfavorable geological conditions. Geological Journal, 59(9), 2668-2689.

[42]

Zhang, X. P., Lv, G. G., Liu, Q. S., Wu, S. C., Zhang, Q., Ji, P. Q., & Xu, H. T. (2020b). Identifying accurate crack initiation and propagation thresholds in siliceous siltstone and limestone. Rock Mechanics and Rock Engineering, 52(2), 1-8.

[43]

Zhang, Z. T., & Gao, W. H. (2020). Effect of different test methods on the disintegration behaviour of soft rock and the evolution model of disintegration breakage under cyclic wetting and drying. Engineering Geology, 279, 105888.

[44]

Zhao, J. P., Tan, Z. S., Wang, X. Y., Zhou, Z. L., & Li, G. L. (2021). Engineering characteristics of water-bearing weakly cemented sandstone and dewatering technology in tunnel excavation. Tunnelling and Underground Space Technology, 121, 104316.

[45]

Zhao, J. P., Tan, Z. S., Yu, R. S., Li, Z. L., & Wang, X. Y. (2022a). Mechanical responses of a shallow-buried super-large-section tunnel in weak surrounding rock: A case study in Guizhou. Tunnelling and Underground Space Technology, 131, 104850.

[46]

Zhao, J. P., Tan, Z. S., Zhang, B. J., & Wang, F. X. (2024). Stress release technology and engineering application of advanced center drifts in a super deep soft rock tunnel: A case study of the Haba Snow Mountain Tunnel. Rock Mechanics and Rock Engineering, 57(9), 7103-7124.

[47]

Zhao, S., Wu, S. L., Yang, L. L., & Wang, H. (2017). Analysis of secondary roof structure of the working face in Shendong mining area. Geotechnical and Geological Engineering, 35(1), 195-202.

[48]

Zhao, Z. H., Tan, Y. L., Chen, S. J., Ma, Q., & Gao, X. J. (2019). Theoretical analyses of stress field in surrounding rocks of weakly consolidated tunnel in a high-humidity deep environment. International Journal of Rock Mechanics and Mining Sciences, 122, 104064.

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