Lateral Structure of Multi-Layer Thick Hard Roofs and Hydraulic Roof-Cutting Pressure Relief in Xiao Jihan Mine
Abstract
1. Introduction
2. Overview of the Mining Face
2.1. Characteristics of Thick Hard Roof Strata
2.2. Roof Fracture Microseismic Monitoring
3. Lateral Structural Characteristics and Stress Transfer of Multi-Layer Thick Hard Roof Strata
3.1. Characteristics of the Structural Form of Thick Hard Roof Strata
3.2. Impact of Lateral Structure on Tunnel-Surrounding Rock Stress
- (1)
- Elastic–rigid idealization: Roof layers are treated as elastic before macroscopic failure, while the post-fracture hinged blocks are simplified as rigid bodies with idealized contacts/hinges.
- (2)
- Equivalent uniform load: The overburden effect is represented by an equivalent uniformly distributed load based on unit weight and layer thickness (Table 2), without explicitly modeling local heterogeneity.
- (3)
- Rotation representation: Block rotation is described by geometric compatibility using representative rotation terms to characterize the post-fracture configuration.
- (4)
- Constant bulking coefficient: Gob filling is estimated with constant swelling coefficients K = 1.08 and 1.10 (from the cited reference).
- (1)
- Overlying Load on the Tunnel-Surrounding Rock
- (2)
- Additional Stress Transmitted by the Lateral Cantilever Rock Layers
- (3)
- Force Exerted by the Hinged Key Block
4. Hydraulic Roof-Cutting Pressure Relief Effect of Lateral Structure
4.1. Principle of Hydraulic Roof-Cutting Pressure Relief
4.2. Determination of the Cutting Layer Position
4.3. Numerical Simulation of the Hydraulic Roof-Cutting Pressure Relief Effect
5. Field Application Effects
5.1. Hydraulic Roof-Cutting Pressure Relief Scheme
5.2. Roof-Cutting Pressure Relief Effect
6. Conclusions
- (1)
- The lateral cantilever phenomenon of multi-layer thick hard roof strata and the impact of two mining disturbances lead to significantly high stress concentration in the tunnel-surrounding rock, requiring appropriate control measures. A mechanical model for stress transfer in multi-layer thick hard lateral structures was established, and it was theoretically determined that the peak stress in the tunnel-surrounding rock is 28.90 MPa, an increase of 18.34 MPa compared to the in situ rock stress.
- (2)
- Through theoretical calculations, the position of the hydraulic roof-cutting layer was determined to be the high-position thick hard roof. Additionally, numerical simulations were used to clarify the stress distribution characteristics in the tunnel-surrounding rock before and after roof cutting. The results indicate that the vertical stress in the tunnel-surrounding rock before and after hydraulic roof cutting is 26.10 MPa and 13.20 MPa, respectively, a reduction of 49.40%. This demonstrates that hydraulic roof cutting can effectively reduce the lateral stress concentration in the surrounding rock of the tunnel.
- (3)
- A hydraulic roof-cutting pressure relief scheme for multi-layer thick hard lateral structures was proposed and applied in field practice. The monitoring results show that in the area where hydraulic roof cutting was not applied, the peak vertical stress in the surrounding rock of the tunnel was 30.75 MPa, with an average of 21.69 MPa. In the area treated with hydraulic roof cutting, the peak vertical stress was 22.51 MPa, with an average of 16.35 MPa. The vertical stress in the surrounding rock of the tunnel decreased by 24.62% after roof cutting, leading to a significant improvement in the stress environment of the surrounding rock. The roof cutting effect was found to be effective.
7. Strengths and Limitations
- (1)
- The study integrates field evidence with engineering decision-making, linking microseismic monitoring, mechanical analysis, and numerical simulation.
- (2)
- The study is based on a single working face, and the findings should be validated in other mines with different roof lithologies and stress conditions.
- (3)
- The UDEC simulation may not fully capture 3D roof structure evolution and non-uniform stress transfer, and the field validation is based on limited monitoring coverage. A discrepancy is observed between the simulated unloading effect and the field result, which may be related to rock mass heterogeneity, discontinuities, and measurement variability during face advance. Future work will employ 3D modeling and stochastic/sensitivity analyses to quantify uncertainty and improve the robustness of the hydraulic roof cutting pressure relief design.
- (4)
- Due to incomplete archiving of the time-series raw data for each monitoring point during the field test, the standard deviation and other variability statistics cannot be reliably calculated; therefore, only peak and mean values are reported in this study. Future monitoring will implement standardized raw data archiving and quality control procedures to enable SD/uncertainty quantification and more rigorous statistical comparisons between the roof-cutting and non-cutting zones.
8. Applicability and Scope
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Geng, M.; Sun, J. Study on disaster mechanism of thick and hard overhanging roof and top cutting control technology. J. Mine Autom. 2024, 50, 132–141. [Google Scholar]
- Xu, D.; Zheng, R.; Li, Y.L. Collaborative prevention and control technology of “fracture-injection-discharge-support” for thick and hard roof working face crossing faults. Coal Eng. 2025, 57, 24–33. [Google Scholar]
- Yang, F. Research on the Breaking Law and Hydraulic Fracturing Weakening Technology of Multi-layer Hard Roof in Thick Coal Seam. Master’s Thesis, Coal Science Research Institute, Beijing, China, 2025. [Google Scholar] [CrossRef]
- Zhai, W.; Guo, Y.C.; Ma, X.C.; Li, N.L.; Zhang, P.; Ma, K.; Jing, Y.X.; Yu, H.; Li, X.T. Research on hydraulic fracturing pressure relief technology in the deep high-stress roadway for surrounding rock control. Adv. Civ. Eng. 2021, 2021, 1217895. [Google Scholar] [CrossRef]
- Guo, W.H.; Cao, A.Y.; Wen, Y.Y.; Xue, C.C.; Lyu, G.W.; Zhao, Q. Mechanism of rockburst in stopes with typical thick roof and wide coal pillars in Ordos mining area. J. Min. Saf. Eng. 2021, 38, 720–729. [Google Scholar]
- Gao, M.S.; Xu, D.; He, Y.L.; Zhang, Z.G.; Yu, X. Investigation on the near-far field effect of rock burst subject to the breakage of thick and hard overburden. J. Min. Saf. Eng. 2022, 39, 215–226. [Google Scholar]
- Yang, K.; Liu, W.J.; Li, Z.H.; Liu, Q.J.; Chi, X.L.; Wei, Z. Catastrophe mechanism and prevention and control technology on soft coal mining with large inclination angle under thick and hard roof. Coal Sci. Technol. 2021, 49, 12–20. [Google Scholar]
- Li, Y.; Chang, G.; Hu, D.; Song, W. Application of pre-splitting blasting roof-cutting pressure relief technology for roadway protection under hard roof. Sci. Rep. 2025, 15, 25458. [Google Scholar] [CrossRef]
- Gao, X.J.; Zhang, Z.; Huang, Z.Z.; Lin, X.Y.; Xue, J.S.; Pang, L.N. Lateral fracture mode and mining stress response characteristics of overlying and thick-hard roof in deep mining well. Rock Soil Mech. 2024, 45, 2450–2461. [Google Scholar] [CrossRef]
- Lu, Y.B.; Yan, S.H.; Zhou, K.Y.; Zhang, Z.; Wang, Y.J. Migration fracture quantitative and control of thick-hard roof in full-width working face with large mining height. J. China Univ. Min. Technol. 2025, 54, 754–769. [Google Scholar]
- Zhang, K.G.; Yuan, L.; Zhang, P.S.; Wang, L.T. Rock bursts induced by thick-hard roof with compound key strata: Mechanisms and technical modes for prevention. Coal Geol. Explor. 2024, 52, 14−24. [Google Scholar] [CrossRef]
- Zhao, S.K.; Zhao, Y.; Wang, Y.; Chen, Z. Experimental study on fracture mode of lateral high and low thick and hard roof in mining roadway. Coal Sci. Technol. 2021, 49, 111–120. [Google Scholar]
- Xu, D.; Gao, M.S.; Zheng, R. Mechanism and control technology of rock burst induced by thick and hard roof breaking in simultaneous mining face. Rock Soil Mech. 2025, 46, 3219–3233. [Google Scholar]
- He, J. Mechanism and Application of Hydraulic Fracturing Pressure Relief in Near and Far Field of Thick and Hard Roof of Coal Pillar Entry Retained. Ph.D. Dissertation, Coal Science Research Institute, Beijing, China, 2025. [Google Scholar] [CrossRef]
- Guo, D.M.; Zhang, W.; Li, X.B.; Wang, H.K.; Zhao, Z.F.; Zhu, R.F. Comprehensive pressure relief technology of small coal-pillar roadway protection in double-roadway excavation and its application. J. Min. Saf. Eng. 2025, 42, 556–566. [Google Scholar]
- He, M.W. Research on hydraulic fracturing treatment technology for large-area suspended roofofreuse roadway in working face with gob-side entry retaining. China Coal 2024, 50, 111–119. [Google Scholar]
- Guo, Z.B.; Wang, H.H.; Ma, Z.M.; Wang, P.F.; Kuai, X.H.; Zhang, X.Z. Research on the transmission of stresses by roof cutting near gob rocks. Energies 2021, 14, 1237. [Google Scholar] [CrossRef]
- Gong, G.; Liu, Z.H.; Zhang, R.F.; Wu, Z.Y.; Ma, F.T. Stress transfer mechanism and engineering practice of hydraulic fracturing roof cutting in roadway. Saf. Coal Mines 2025, 56, 165−175. [Google Scholar]
- Wang, T.; Xu, G.Y.; Liu, L.Y.; Bai, C.Q.; Ye, W.W.; Sun, L.H. Principle and practice of hydraulic softening top-cutting and pressure relief technology in weakly cemented strata. Front. Earth Sci. 2024, 12, 1367933. [Google Scholar] [CrossRef]
- Xu, X.D.; Zhou, Y.J.; Yang, J.; Gao, Y.B.; Zhu, C.; Wang, Y.J.; Fu, Q. A new method of mining pressure control for roof cutting in advance working face. Eng. Fail. Anal. 2024, 161, 108302. [Google Scholar] [CrossRef]
- Ren, Z.Y.; Wang, M.X. Study on Deep Hole Blasting for Roof Cutting, Pressure Relief and Roadway Protection in Deep Multi-Coal Seam Mining. Appl. Sci. 2025, 15, 10138. [Google Scholar] [CrossRef]
- Ju, J.F.; Xu, J.L. Structural characteristics of key strata and strata behaviour of a fully mechanized longwall face with 7.0m height chocks. Int. J. Rock Mech. Min. Sci. 2013, 58, 46–54. [Google Scholar] [CrossRef]
- Zhang, X.Y.; Pak, R.Y.S.; Gao, Y.B.; Liu, C.K.; Zhang, C.; Yang, J.; He, M.C. Field experiment on directional roof presplitting for pressure relief of retained roadways. Int. J. Rock Mech. Min. Sci. 2020, 134, 104436. [Google Scholar] [CrossRef]
- Islavath, S.R.; Deb, D.; Kumar, H. Development of a Roof-to-floor convergence index for longwall face using combined finite element modelling and statistical Approach. Int. J. Rock Mech. Min. Sci. 2020, 127, 104221. [Google Scholar] [CrossRef]
- Alber, M.; Fritschen, R.; Bischoff, M.; Meier, T. Rock mechanical investigations of seismic events in a deep longwall coal Mine. Int. J. Rock Mech. Min. Sci. 2009, 46, 408–420. [Google Scholar] [CrossRef]
- Wang, H.S.; He, M.C.; Wang, J.; Yang, G.; Ma, Z.M.; Ming, C.; Wang, R.; Zhang, W.J. Deformation mechanism and roof pre-splitting control technology of gob-side entry in thick hard main roof full-mechanized longwall caving-panel. J. Cent. South Univ. 2024, 31, 3206–3224. [Google Scholar] [CrossRef]
- Chang, Z.C.; Wang, X.F.; Qing, D.D.; Sun, Y.X.; Yue, Y.P.; Chen, X.Y.; Wang, J.Y. Controlled reconstruction and application research of lateral overlying strata structure in high-gas mines with thick-hard roofs for a fully-mechanized top-caving face. Heliyon 2024, 10, e30705. [Google Scholar] [CrossRef]
- Lu, Y.B.; Yan, S.H.; Fu, P.; Zhou, K.Y. Stress transfer mechanism and strong rock pressure control in the roof composite structure with a large mining height. J. Min. Saf. Eng. 2025, 42, 832–844. [Google Scholar]
















| Item | Prior Single-Layer Studies (e.g., [9,10,11,12]) | This Study |
|---|---|---|
| Roof representation | Single key stratum/single-layer roof beam idealization | Multi-layer thick hard roof lateral structure |
| Stress transfer path | Often simplified; limited discussion of high-position structure transfer to roadway | Explicit stress transfer analysis from high-position multi-layer structure to roadway |
| Monitoring linkage | Monitoring evidence not explicitly coupled to model selection | Microseismic activity range used to constrain active roof range and guide cutting horizon |
| Pressure relief design | General presplitting/relief concepts | Hydraulic roof-cutting pressure relief with horizon selection + field validation |
| Main contribution | Local/single-layer mechanism | Unified framework: monitoring + multi-layer mechanics + cut-off unloading verification |
| Layer Number | Distance from Coal Seam (m) | Thickness (m) | Tensile Strength (MPa) | Compressive Strength (MPa) | Elastic Modulus (GPa) |
|---|---|---|---|---|---|
| 1 | 150.87 | 1.08 | 4.52 | 47.16 | 13.76 |
| 3 | 115.30 | ||||
| 7 | 51.31 | 1.10 | |||
| 11 | 3.82 |
| Layer Number | Distance from the Coal Seam (m) | Discrimination Results |
|---|---|---|
| 1 | 150.87 | Stable |
| 3 | 115.30 | Stable |
| 7 | 51.31 | Masonry beam |
| 11 | 3.82 | Cantilever beam |
| Type | Lithology | Uniaxial Compressive Strength (MPa) | Tensile Strength (MPa) | Elastic Modulus (MPa) | Cohesion (MPa) | Internal Friction Angle (°) |
|---|---|---|---|---|---|---|
| Main roof | Sandstone | 30.64 | 1.60 | 3410 | 3.31 | 38.48 |
| Immediate roof | Mudstone | 19.9 | 2.90 | 1664 | 3.30 | 33.10 |
| Coal | 6.30 | 0.70 | / | / | / | |
| Floor | Mudstone | 12.30 | / | 1729 | 0.94 | 37.50 |
| Sandstone | 29.40 | / | 3489 | 1.54 | 38.20 | |
| Scheme | Specific Content |
|---|---|
| Scheme 1 | No roof cutting |
| Scheme 2 | Roof cutting to the high-position thick hard roof, with a cutting angle of 90° |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Liu, H.; Chen, L.; Wang, X.; Gao, H.; Qian, C.; Chen, X. Lateral Structure of Multi-Layer Thick Hard Roofs and Hydraulic Roof-Cutting Pressure Relief in Xiao Jihan Mine. Appl. Sci. 2026, 16, 1127. https://doi.org/10.3390/app16021127
Liu H, Chen L, Wang X, Gao H, Qian C, Chen X. Lateral Structure of Multi-Layer Thick Hard Roofs and Hydraulic Roof-Cutting Pressure Relief in Xiao Jihan Mine. Applied Sciences. 2026; 16(2):1127. https://doi.org/10.3390/app16021127
Chicago/Turabian StyleLiu, Hui, Lichuang Chen, Xufeng Wang, Hui Gao, Chenlong Qian, and Xuyang Chen. 2026. "Lateral Structure of Multi-Layer Thick Hard Roofs and Hydraulic Roof-Cutting Pressure Relief in Xiao Jihan Mine" Applied Sciences 16, no. 2: 1127. https://doi.org/10.3390/app16021127
APA StyleLiu, H., Chen, L., Wang, X., Gao, H., Qian, C., & Chen, X. (2026). Lateral Structure of Multi-Layer Thick Hard Roofs and Hydraulic Roof-Cutting Pressure Relief in Xiao Jihan Mine. Applied Sciences, 16(2), 1127. https://doi.org/10.3390/app16021127

