Innovative approaches for predicting seismic stability of circular and rectangular tunnels in cohesive-frictional soils using machine learning and finite element limit analysis
This paper investigates the stability solutions for plane-strain circular and rectangular tunnels in cohesive-frictional soils using the Mohr-Coulomb failure criteria. The study examines the impact of pseudo-static seismic body forces on tunnel failure behavior during earthquakes. Stability analysis...
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Veröffentlicht in: | Modeling earth systems and environment 2024-08, Vol.10 (4), p.5831-5849 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | This paper investigates the stability solutions for plane-strain circular and rectangular tunnels in cohesive-frictional soils using the Mohr-Coulomb failure criteria. The study examines the impact of pseudo-static seismic body forces on tunnel failure behavior during earthquakes. Stability analysis is conducted using two-dimensional finite element limit analysis (2D FELA), ensuring reliable results. A comprehensive range of dimensionless input parameters is systematically examined, including tunnel cover depth ratio (
H/D
), normalized tunnel shape ratio (
B/D
), coefficient of horizontal earthquake acceleration (
k
h
), normalized soil strength (
γD/c
), and soil friction angle (
φ
), to analyze the stability load coefficient (
σ
i
/c
) or the required load at the tunnel circumference. The collapse mechanisms of circular and rectangular tunnels in Mohr-Coulomb soils are thoroughly discussed. The findings offer innovative solutions for improving tunnel design practices in cohesive-frictional soils under pseudo-static seismic forces. Additionally, this study introduces a machine learning model integrating a random forest (RF) technique with the dragonfly optimization algorithm (DOA) to develop surrogate models for predicting the seismic stability load factor of tunnels. The proposed RF-DOA hybrid model is validated, showing strong agreement with numerical FELA results. Shapley analysis reveals normalized soil strength (
γD/c
) as the most influential factor. These findings provide a reliable solution and an effective tool for enhancing tunnel design in cohesive-frictional soils under earthquake conditions. |
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ISSN: | 2363-6203 2363-6211 |
DOI: | 10.1007/s40808-024-02080-6 |