Supporting Structure of Steel Corrugated Plate-Mold Bag Concrete and Its Application in a Circular Shaft
Abstract
:1. Introduction
2. Composition and Structure of Steel Corrugated Plate-Mold Bag Concrete
2.1. Steel Corrugated Plate Member
2.2. Mold Bag and Mold Bag Concrete
3. Analytical Solutions
3.1. Analytical Solution Calculation
3.2. Material Strength Check of Support Structure
4. Numerical Simulations
4.1. Numerical Modelling
4.2. Modelling of the Interfaces and Contact
4.3. Loads and Boundary Conditions
4.4. Validation of the Model
4.5. Analysis of Simulation Results
4.6. Parametric Studies
5. Field Test
5.1. Engineering and Test Overview
5.2. Structural Design Parameters
5.3. Monitoring Scheme
5.4. Monitoring Results and Analysis
6. Conclusions
- (1)
- Mold bag concrete can fill the structural gap between the excavation surface and the steel corrugated panel, reduce the loss of soil, and help control the deformation and settlement caused by the excavation. Part of the gas and water in the concrete inside the mold bag is squeezed out with the grouting process, reducing the void space and the water–cement ratio, which is conducive to the rapid setting of the concrete and achieving rapid support. The combination of steel corrugated plate and mold bag concrete can form a rapid support technology for underground engineering.
- (2)
- The interaction force between the steel corrugated plate and the mold bag concrete contact surface is influenced by four main factors: the excavation depth, the thickness of the steel corrugated plate, the thickness of the mold bag concrete, and the excavation radius of the circular shaft. As the stiffness of the concrete inside the mold bag increases, most of the external loads are borne by the mold bag concrete, and the load borne by the steel corrugated plate is gradually reduced to 30%.
- (3)
- Numerical simulation results show that the thinner the steel corrugated plate and the mold bag concrete, and the larger the excavation depth and radius of the circular shaft, the stress of the structure will increase and the radial deformation of the structure will increase. If the design depth of the shaft is small, the grouting pressure generated during construction will be the most significant factor leading to the deformation of the structure.
- (4)
- The experiment shows that grouting pressure is the strongest safety factor that affects the stress state of corrugated steel plates. A reasonable grouting pressure allows the concrete to fill the mold bag and achieve self-compaction so that the steel corrugated plate is evenly stressed. The woven geotextiles and non-woven geotextiles selected for the test are both breathable, permeable, and impervious to the slurry, achieving a wrapping and shaping effect on the concrete.
- (5)
- In the field process test research, this paper only carried out the first phase of the test, initially verifying the feasibility of the new support structure construction process and structural mechanical effect. In the next step of the experimental research, an in-depth study should be carried out on how to optimize the design and installation of the mold bag, strengthen the control of construction errors, and improve the construction and installation accuracy and speed. For the corrugated steel panels exposed on the outside to do anti-corrosion treatment, such as taking measures to avoid or reduce the corrosion of steel by spraying plating on the surface or spraying anti-corrosion spray paint.
- (6)
- The combination of steel corrugated plate and mold bag concrete for underground engineering support structures is feasible and provides new ideas for underground engineering support technologies such as tunnels and pits, which are of great significance.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Material | Mass Density (kg·m−3) | Cohesion (kPa) | Internal Friction Angle (°) | Poisson’s Ratio | Elastic Modulus (MPa) |
---|---|---|---|---|---|
Soil | 1900 | 8 | 36 | 0.25 | 10 |
Steel- Q235 | 7850 | - | - | 0.33 | 210,000 |
Concrete- C30 | 2500 | - | - | 0.2 | 30,000 |
Category | Standard Breaking Strength (kN·m−1) | Standard Strength Corresponds to Elongation (%) | CBR Bursting Strength (kN) | Equivalent Aperture (mm) |
---|---|---|---|---|
Polyester filament woven geotextiles | 65 | 35.30 (longitude, latitude) | 6.0 | 0.05~0.50 |
Polyester filament spun-bond needle-punched non-woven geotextiles | 30 | 0.35~0.45 | 6.4 | 0.05~0.20 |
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Li, P.; Wang, S.; Zhang, M.; Huang, Z. Supporting Structure of Steel Corrugated Plate-Mold Bag Concrete and Its Application in a Circular Shaft. Appl. Sci. 2023, 13, 12937. https://doi.org/10.3390/app132312937
Li P, Wang S, Zhang M, Huang Z. Supporting Structure of Steel Corrugated Plate-Mold Bag Concrete and Its Application in a Circular Shaft. Applied Sciences. 2023; 13(23):12937. https://doi.org/10.3390/app132312937
Chicago/Turabian StyleLi, Pengfei, Shuo Wang, Mingju Zhang, and Zhengdong Huang. 2023. "Supporting Structure of Steel Corrugated Plate-Mold Bag Concrete and Its Application in a Circular Shaft" Applied Sciences 13, no. 23: 12937. https://doi.org/10.3390/app132312937
APA StyleLi, P., Wang, S., Zhang, M., & Huang, Z. (2023). Supporting Structure of Steel Corrugated Plate-Mold Bag Concrete and Its Application in a Circular Shaft. Applied Sciences, 13(23), 12937. https://doi.org/10.3390/app132312937