An Equivalent Radial Stiffness Method of Laboratory SEPT on Anchorage Performance Prediction of Rockbolts under Different Field Geoconditions
Abstract
:1. Introduction
2. Materials and Methods
2.1. Equivalent Radial Stiffness Theory
2.2. Equivalent Radial Stiffness Calculation
3. Laboratory Configuration
- (1)
- Bolt
- (2)
- Confining tubes
- (3)
- Resin anchorage agent
- (4)
- Pull-out specimens
4. Results and Discussion
4.1. Experimental Results
4.2. Anchorage Force vs. Radial Stiffness
4.3. Validity Study of Equation (4)
4.4. Failure Mode
5. Conclusions
- (1)
- On the basis of thick wall cylinder theory, an equivalent radial stiffness method was developed to establish the relationship between the confining tube in the laboratory and the elastic properties of surrounding rock (Equations (1)–(3)). Calculation results showed that the PVC tube (E = 4.0 GPa and v = 0.35) corresponds to the radial stiffness of the weak surrounding rock (Er = 1.0–3.5 GPa, vr = 0.25–0.30); Al tube (E = 68.9 GPa and v = 0.33) corresponds to the medium-strong surrounding rock (Er = 15.0–50 GPa, vr = 0.20–0.25); and the steel tube (E = 206 GPa and v = 0.3) corresponds to the strong surrounding rock (Er = 50.0–140.0 GPa, vr = 0.15–0.20). This can be used to improve the accuracy of laboratory SEPT results towards the site outcome (Figure 2).
- (2)
- Two kinds of dextral-threaded bolt were studied using the developed method of this study. PVC, Al, and steel tubes were used as confinement in laboratory SEPT, and anchorage performance was obtained under different surrounding rock strength levels (Figure 7). The results show that axial load capacity increased with the increase in radial stiffness of the confining materials. Compared with PVC tube specimens, peak axial force was nearly double when using thick steel tubes (Table 2).
- (3)
- On the basis of theoretical analysis and curve fitting, the relationship between the average peak axial force and radial stiffness of the confining materials was proposed to be a negative exponential (Equation (4)) function. A validity study was conducted, and its result showed that the proposed relationship agreed well with the theory in the literature. The developed equation could be used to determine the performance of a specific bolt under different field geoconditions and provide accurate parameters for numerical modeling.
- (4)
- Post-testing specimens showed that the failure modes of the original and modified dextral bolts were parallel shear failure and expansive slippage failure, respectively (Figure 10). As anchorage performance is determined by the load-transfer mechanism in a bolting system, which is closely related to the failure model of rockbolting, it may be practical to design and realize different anchorage effects for different field geoconditions via controlling the technology of rockbolting failures, such as with rebar-profile modification.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Properties | Values | Properties | Values |
---|---|---|---|
Diameter ϕ (mm) | 20.0 | Transverse rib /bottom width (mm) | 4.3/5.6 |
Transverse rib height h (mm) | 1.8 | Rib spacing L (mm) | 12 or 48 |
Yielding strength δs (MPa) | 403.1 | Tensile strength σt (MPa) | 567.5 |
Confinement | Average Anchorage Force (Standard Deviation) (kN) | |
---|---|---|
Rib Spacing (12 mm) | Rib Spacing (48 mm) | |
Steel (7.0) | 131.0 (1.0) | 164.6 (2.7) |
Steel (5.5) | 118.2 (4.5) | 156.2 (3.3) |
Al | 87.3 (8.0) | 100.9 (16.1) |
PVC | 66.4 (3.5) | 82.4 (2.6) |
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Zhang, M.; Han, J.; Bi, Z.; Cao, C.; Wu, T.; Ma, S. An Equivalent Radial Stiffness Method of Laboratory SEPT on Anchorage Performance Prediction of Rockbolts under Different Field Geoconditions. Appl. Sci. 2021, 11, 8041. https://doi.org/10.3390/app11178041
Zhang M, Han J, Bi Z, Cao C, Wu T, Ma S. An Equivalent Radial Stiffness Method of Laboratory SEPT on Anchorage Performance Prediction of Rockbolts under Different Field Geoconditions. Applied Sciences. 2021; 11(17):8041. https://doi.org/10.3390/app11178041
Chicago/Turabian StyleZhang, Ming, Jun Han, Zuoqing Bi, Chen Cao, Tao Wu, and Shuangwen Ma. 2021. "An Equivalent Radial Stiffness Method of Laboratory SEPT on Anchorage Performance Prediction of Rockbolts under Different Field Geoconditions" Applied Sciences 11, no. 17: 8041. https://doi.org/10.3390/app11178041
APA StyleZhang, M., Han, J., Bi, Z., Cao, C., Wu, T., & Ma, S. (2021). An Equivalent Radial Stiffness Method of Laboratory SEPT on Anchorage Performance Prediction of Rockbolts under Different Field Geoconditions. Applied Sciences, 11(17), 8041. https://doi.org/10.3390/app11178041