Numerical Simulation Study on Deformation Characteristics of Surrounding Rock during Construction and Operation of Large Underground Gas Storage Structures
Abstract
:1. Introduction
2. Model
2.1. Cavern Structure Type
2.2. Constitutive Model
2.2.1. Yield Criterion
2.2.2. Plastic Flow Law
2.2.3. Unit Destruction
2.3. Boundary Conditions
3. Results and Discussion
3.1. Influence of Surrounding Rock Grade on Cavern Stability
3.1.1. Deformation Characteristics of Cavern Surrounding Rock
3.1.2. Distribution Characteristics of the Plastic Zone of Cavern Surrounding Rock
3.2. Effect of Depth-Span Ratio on Cavern Stability
3.2.1. Deformation Characteristics of Surrounding Rock
3.2.2. Distribution Characteristics of the Plastic Zone of Surrounding Rock
3.3. Effect of Burial Depth on Cavern Stability
3.3.1. Deformation Characteristics of Surrounding Rock
3.3.2. Distribution Characteristics of the Plastic Zone of Surrounding Rock
4. Conclusions
- After construction, the deformation of the rock surrounding the cavern chamber increases with the decrease in the rock grade. During the operation period, under an ultimate gas storage pressure of 20 MPa, the displacement of the surrounding rock around the cavern chamber increases with the decrease in the surrounding rock grade. Therefore, the stability of Grade II and Grade III surrounding rock can, in general, be managed.
- After construction, the deformation of the surrounding rock around the cavern is less affected by changes in the depth-span ratio. During the operation period, if an ultimate gas storage pressure of 20 MPa is applied to the interior of the cavern, the vertical displacement of the surrounding rock in the cavern decreases with the increase in the depth-span ratio, while the horizontal displacement of the surrounding rock increases with the increase in the depth-span ratio.
- After construction, the deformation of the rock surrounding the cavern chamber increases as the burial depth increases. During the operation period, the displacement of the surrounding rocks around the cavern chamber, under an ultimate gas storage pressure of 20 MPa, decreases as the burial depth of the cavern chamber increases. This is mainly due to the increase in ground stress around the surrounding rock of the cavern chamber as the burial depth of the cavern chamber increases. However, the force on the surrounding rock will be smaller for the gas storage pressure inside the cavern.
- According to the results, considering the stability of the cavern chamber’s surrounding rock during the construction period and operation period, the cavern chamber should be arranged in areas with good conditions, such as Grade II-III or better surrounding rock. Areas with Grade IV or worse surrounding rock conditions are not suitable for the construction of large underground gas storage chambers. The depth-span ratio should be 2.5~3.0, and the surrounding rock of the cavern chamber has better stability within a burial depth of 200 m.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Working Condition | Depth-Span Ratio | Surrounding Rock Grade | Buried Depths/m |
---|---|---|---|
S1-1 | 1.5 | III | 200 |
S1-2 | 2 | III | 200 |
S1-3 | 2.5 | III | 200 |
S1-4/S2-2/S3-2 | 3 | III | 200 |
S1-5 | 3.5 | III | 200 |
S2-1 | 3 | Ⅱ | 200 |
S2-3 | 3 | IV | 200 |
S3-1 | 3 | III | 100 |
S3-3 | 3 | III | 300 |
S3-4 | 3 | III | 400 |
S3-5 | 3 | III | 500 |
Surrounding Rock Grade | Unit Weight /(kN·m−3) | Elastic Modulus/GPa | Poisson’s Ratio | Internal of Friction Angle/(°) | Cohesion/MPa | Calculation of Friction Angle /(°) |
---|---|---|---|---|---|---|
Ⅱ | 26 | 27 | 0.2 | 55 | 1.8 | 75 |
III | 24 | 13 | 0.28 | 45 | 1.1 | 65 |
IV | 22 | 4 | 0.35 | 35 | 0.5 | 55 |
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Peng, Z.; Ding, H.; Jiang, X.; Hu, X.; Cheng, L. Numerical Simulation Study on Deformation Characteristics of Surrounding Rock during Construction and Operation of Large Underground Gas Storage Structures. Sustainability 2022, 14, 16864. https://doi.org/10.3390/su142416864
Peng Z, Ding H, Jiang X, Hu X, Cheng L. Numerical Simulation Study on Deformation Characteristics of Surrounding Rock during Construction and Operation of Large Underground Gas Storage Structures. Sustainability. 2022; 14(24):16864. https://doi.org/10.3390/su142416864
Chicago/Turabian StylePeng, Zhenhua, Hao Ding, Xinghong Jiang, Xuebing Hu, and Liang Cheng. 2022. "Numerical Simulation Study on Deformation Characteristics of Surrounding Rock during Construction and Operation of Large Underground Gas Storage Structures" Sustainability 14, no. 24: 16864. https://doi.org/10.3390/su142416864
APA StylePeng, Z., Ding, H., Jiang, X., Hu, X., & Cheng, L. (2022). Numerical Simulation Study on Deformation Characteristics of Surrounding Rock during Construction and Operation of Large Underground Gas Storage Structures. Sustainability, 14(24), 16864. https://doi.org/10.3390/su142416864