The Secondary Development and Application of the Improved Nishihara Creep Model in Soft Rock Tunnels
Abstract
:1. Introduction
2. Property Test of Thin-Layered Carbonaceous Phyllite
2.1. Longitudinal Wave Velocity Test
2.2. Uniaxial Compression Test
3. The Nonlinear Creep Equation of Thin-Layered Carbonaceous Phyllite
3.1. One-Dimensional Creep Constitutive Equation
- (1)
- Under construction disturbance, the thin-layered carbonaceous phyllite stratum is mainly in three damage states;
- (2)
- Given the rock mass’s rheology, the partition mode of the surrounding rock is changed from the common ‘viscoelastic zone + viscoplastic zone ‘to‘ viscoelastic zone + viscoplastic zone + broken zone ‘, as shown in Figure 6. (At the same time, the analysis assumes the following: the tunnel’s excavation section is circular with an equivalent excavation radius of ‘a’; the surrounding rock is a homogeneous and isotropic viscoelastic–plastic body [29]; the tunnel is deeply buried in a hydrostatic stress field and the weight of the surrounding rock is neglected; and the initial support provides constant radial support resistance ‘pi’ and the support size remains constant.);
- (3)
- After tunnel excavation, the boundary stress of the viscoelastic zone and viscoplastic zone is the long-term strength of surrounding rock and the boundary stress of viscoplastic zone and broken zone is the temporary strength.
3.2. D-P Strength Criterion Considering Softening Effect
4. Implementing the Nonlinear Creep Model in FLAC3D Software
4.1. Operating Principles of the FLAC3D Constitutive Model
4.2. Finite Difference Form of the GNonlinear Creep Model
4.3. Program Verification
5. Engineering Verification
5.1. Engineering Overview
5.2. Construction and Calculation of the Model
5.3. Comparative Analysis of Surrounding Rock Displacement
6. Discussion
7. Conclusions
- Field test results indicate that the rock surrounding thin-layered carbonaceous phyllite can be divided into three damage states post-excavation. Uniaxial compression test results demonstrate that thin-layered carbonaceous phyllite softens significantly upon reaching yield strength yet maintains a certain load capacity;
- Consideration of the physical and mechanical properties of thin-layered carbonaceous phyllite has led to improvements in the traditional Nishihara model. By introducing a softening factor, the D-P yield criterion is simplified and modified;
- A detailed three-dimensional finite difference expression of the constitutive model is derived based on the finite difference theory. Utilizing the FLAC3D software’s secondary development platform, the Nishihara constitutive model is further developed and then validated via the simulation of a triaxial compression creep test. Simulation results align with the actual creep test results, thus validating the logic and efficacy of the model’s further developed calculation program;
- Engineering examples simulated by the model in this study are compared with actual monitoring results. The results reveal that the displacement error at vault point A is 3.14% with convergence errors of 3.75% at spandrel BC and 4.02% at sidewall DE. Moreover, the trend of numerical simulation results aligns with the actual situation.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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/kPa | /° | /MPa | /GPa | /GPa·h−1 | /GPa·h−1 | ha | hb | /MPa | ||
---|---|---|---|---|---|---|---|---|---|---|
69.4 | 8.274 | 841.8 | 1.085 | 1.531 | 3.790 | 4.469 | 1.26 | 1.51 | 0.688 | 7.765 |
Support Structure | E/GPa | v | Cross-Sectional-Area/m2 | Density/Kg·m−3 | Thickness/m |
---|---|---|---|---|---|
Cable element | 210 | 0.3 | 6.22 × 10−3 | 7.6 | / |
Liner enelemt | 28 | 0.17 | / | 2.45 | 0.3 |
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Deng, X.; Shi, J.; Li, X.; Wang, R.; Zhang, J.; Yang, X. The Secondary Development and Application of the Improved Nishihara Creep Model in Soft Rock Tunnels. Buildings 2023, 13, 2082. https://doi.org/10.3390/buildings13082082
Deng X, Shi J, Li X, Wang R, Zhang J, Yang X. The Secondary Development and Application of the Improved Nishihara Creep Model in Soft Rock Tunnels. Buildings. 2023; 13(8):2082. https://doi.org/10.3390/buildings13082082
Chicago/Turabian StyleDeng, Xianghui, Junxin Shi, Xiaolin Li, Rui Wang, Jinzeng Zhang, and Xin Yang. 2023. "The Secondary Development and Application of the Improved Nishihara Creep Model in Soft Rock Tunnels" Buildings 13, no. 8: 2082. https://doi.org/10.3390/buildings13082082
APA StyleDeng, X., Shi, J., Li, X., Wang, R., Zhang, J., & Yang, X. (2023). The Secondary Development and Application of the Improved Nishihara Creep Model in Soft Rock Tunnels. Buildings, 13(8), 2082. https://doi.org/10.3390/buildings13082082