Analysis of the factors affecting the construction mechanical characteristics of small-spacing tunnel groups

The construction mechanical response of small-spacing tunnel groups is strongly influenced by surrounding rock grade, tunnel spacing, and burial depth. Based on the close-stacked tunnel group project in Hongyan Village, Chongqing, this study establishes a PLAXIS 3D numerical model to investigate the deformation and stress response of the tunnel group under different conditions. The results show that surrounding rock grade mainly controls the deformation magnitude. As the surrounding rock grade decreases from Grade I to Grade IV, the maximum arch crown settlement of the main tunnel increases from 1.51 mm to 10.45 mm. Tunnel spacing mainly affects the interaction intensity between adjacent tunnels. When the spacing decreases to 1.0 m, the arch crown settlement reaches 8.94 mm, indicating a strengthened group-tunnel effect. Burial depth primarily amplifies the overall deformation level. When the burial depth increases from 3.0 m to 23.8 m, the arch crown settlement increases by 7.81 mm. These results indicate that the stability of small-spacing tunnel groups is jointly controlled by surrounding rock quality, spatial spacing, and burial-depth-induced stress conditions. The findings provide a reference for stability evaluation and support design of close-stacked tunnel groups under complex geological conditions.

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Publication Details

Journal
Scientific Reports
Published
2026-09-01
DOI
https://doi.org/10.1038/s41598-026-69750-6
Primary Topic
Geotechnical Engineering and Analysis
Type
article
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Analysis of the factors affecting the construction mechanical characteristics of small-spacing tunnel groups

Suliman Lojain, Zuliang Zhong, Haodong Zheng, Xinrong Liu et al.
Scientific Reports
Geotechnical Engineering and Analysis
article

Analysis of the factors affecting the construction mechanical characteristics of small-spacing tunnel groups

Suliman Lojain, Zuliang Zhong, Haodong Zheng, Xinrong Liu, Hai Chen
article en

Abstract

The construction mechanical response of small-spacing tunnel groups is strongly influenced by surrounding rock grade, tunnel spacing, and burial depth. Based on the close-stacked tunnel group project in Hongyan Village, Chongqing, this study establishes a PLAXIS 3D numerical model to investigate the deformation and stress response of the tunnel group under different conditions. The results show that surrounding rock grade mainly controls the deformation magnitude. As the surrounding rock grade decreases from Grade I to Grade IV, the maximum arch crown settlement of the main tunnel increases from 1.51 mm to 10.45 mm. Tunnel spacing mainly affects the interaction intensity between adjacent tunnels. When the spacing decreases to 1.0 m, the arch crown settlement reaches 8.94 mm, indicating a strengthened group-tunnel effect. Burial depth primarily amplifies the overall deformation level. When the burial depth increases from 3.0 m to 23.8 m, the arch crown settlement increases by 7.81 mm. These results indicate that the stability of small-spacing tunnel groups is jointly controlled by surrounding rock quality, spatial spacing, and burial-depth-induced stress conditions. The findings provide a reference for stability evaluation and support design of close-stacked tunnel groups under complex geological conditions.

Scientific Reports
Chongqing University (CN)
Sustainable cities and communities
Openalex Percentile: Top 11%
Geotechnical Engineering and Analysis
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